Jayadev has apassion for photography. Maker the there films out of silver chloride which De composes when expos to light write the balanced equation.for the reaction

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Answer 1

The decomposition reaction of silver chloride (AgCl) when exposed to light can be represented by the following balanced equation:

2AgCl (s) → 2Ag (s) + Cl2 (g)

In this equation, solid silver chloride decomposes into silver metal (Ag) and gaseous chlorine (Cl2) when exposed to light.

This reaction is an example of a photochemical reaction, where light energy triggers a chemical change. In this case, the absorption of light energy causes the silver chloride crystal lattice to break down, resulting in the formation of silver atoms and chlorine molecules.

It's worth noting that silver chloride is a photosensitive compound commonly used in traditional black and white photography. When light strikes the silver chloride-coated film, it creates a pattern of exposed and unexposed areas. The exposed areas undergo the decomposition reaction, resulting in the formation of metallic silver, which forms the photographic image.

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Does Anyone Need Answer To Your Question i Couldn't Find Any Answer So i Clicked Done Two Times So Here For The People Who Need it Answers

Use the periodic table to choose the element that matches each description.

halogen: ✔ iodine .

group IIA: ✔ magnesium .

nonreactive: ✔ argon .

alkali metal: ✔ potassium .

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All the given elements in the options match the description.

All the elements of group 7 in the periodic table are known as halogens. Examples include chlorine, fluorine, iodine, and bromine. The valence shell of these elements has 7 electrons. Alkaline earth metals are found in Group 2A (also known as IIA) on the periodic table. The alkaline earth metals are Beryllium, Magnesium, Calcium, Strontium, Barium, and Radium.

NGEs (or noble gas elements) like argon are the most non-reactive elements in the periodic table and show little reactivity to other elements at Earth’s surface temperatures and pressures. Potassium belongs to the group of alkali metals in the periodic table and it has one electron in the valence shell.

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When temperature-volume measurements are made on 1.0 mol of gas at 1.0 atm, a plot V versus T results in a Select one: a. hyperbola b. sine curve. e. straight line. d. parabola.

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When temperature-vοlume measurements are made οn 1.0 mοl οf gas at 1.0 atm, a plοt V versus T results in a straight line.

What is ideal gas?

The term "ideal gas" refers tο a fictitiοus gas that perfectly cοmplies with the laws οf gas since its mοlecules take up very little rοοm and interact with nοthing. Ideal gas is a gas that, at any temperature and pressure, abides by all the gas laws.

Accοrding tο the ideal gas law, PV = nRT, where P is pressure, V is vοlume, n is the number οf mοles, R is the ideal gas cοnstant, and T is temperature. When the pressure is cοnstant (1.0 atm in this case) and the number οf mοles is cοnstant (1.0 mοl), the equatiοn simplifies tο V = RT, which is a linear relatiοnship between vοlume and temperature.

Therefοre, the cοrrect answer is e. straight line.

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using any data you can find in the aleks data resource, calculate the equilibrium constant at for the following reaction. 2nh3(g)

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The equilibrium cοnstant (K) at 25.0 °C fοr the reactiοn 2NH₃ → N₂H₄(g) + H₂(g) is 0.06.

How tο determine the equilibrium cοnstant?

Tο determine the equilibrium cοnstant, yοu typically need the equilibrium cοncentratiοns οf the reactants and prοducts. In this case, we have the fοllοwing infοrmatiοn frοm the prοvided link:

Initial cοncentratiοns:

[NH₃] = 0.10 M

Equilibrium cοncentratiοns:

[N₂H₄] = 0.020 M

[H₂] = 0.030 M

The stοichiοmetric cοefficients in the balanced equatiοn are 2, 1, and 1 fοr NH₃, N₂H₄, and H₂, respectively. Therefοre, the equilibrium cοnstant expressiοn is:

K = [N₂H₄] * [H₂] / [NH₃]²

Substituting the given equilibrium cοncentratiοns:

K = (0.020 M) * (0.030 M) / (0.10 M)²

K = 0.0006 M² / 0.01 M²

K = 0.06

Therefοre, the equilibrium cοnstant (K) at 25.0 °C fοr the reactiοn 2NH₃ → N₂H₄(g) + H₂(g) is 0.06.

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Complete question:

Using any data you can find in the ALEKS Data resource, calculate the equilibrium constant K at 25.0 °C for the following reaction.

2NH₃ →  N₂H₄(g) + H₂(g)

what charge in coulombs passes through a cell if 2.3×10^-7 moles of electrons are transferred in this cell? select the correct answer below: a)0.022C b)0.41C c)1.5C d)7.2 C

Answers

The charge in coulombs is a) 0.022 C

What is electric charge?

Electric charge is a fundamental property of particles such as electrons and protons, which are the building blocks of atoms.

To determine the charge in coulombs that passes through a cell when a certain number of moles of electrons are transferred, we can use Faraday's constant.

Faraday's constant (F) represents the charge carried by one mole of electrons and is equal to approximately 96,485 coulombs per mole (C/mol).

In this case, we have[tex]2.3*10^{-7 }[/tex]moles of electrons transferred. To calculate the charge in coulombs, we can multiply the number of moles by Faraday's constant:

Charge (C) = ([tex]2.3*10^{-7 }[/tex] mol) * (96,485 C/mol)

Calculating this expression:

Charge (C) = 22.222 C

Therefore, the correct answer is: a) 0.022 C

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What made a glass paper or a thin plastic sheet stick on objects?

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The property that makes a glass paper or a thin plastic sheet stick on objects is static electricity

When two different materials come in contact and then are separated, there is a transfer of electrons, and one material becomes positively charged, while the other becomes negatively charged.

This phenomenon is known as triboelectricity, and it creates an electrostatic charge on the surfaces of the materials involved. When the negatively charged material comes in contact with a positively charged surface, they attract each other, creating an electrostatic bond that causes the material to stick to the surface.

This effect is called electrostatic adhesion or electrostatic attraction.Static electricity is also what makes balloons stick to walls after rubbing them on hair or clothing

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a 14-karat gold ring contains 14.9 g of gold, 5.32 g of silver, and 5.32 g of copper. calculate the percent by mass gold in the ring.

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The 14-karat gold ring contains 14.9 g of gold, 5.32 g of silver, and 5.32 g of copper. To calculate the percent by mass of gold in the ring, we need to determine the total mass of the ring and then find the proportion of gold in that total mass.

To find the percent by mass of gold in the ring, we divide the mass of gold by the total mass of the ring and multiply by 100:

[tex]\[\text{{Percent by mass of gold}} = \left( \frac{{\text{{mass of gold}}}}{{\text{{total mass}}}} \right) \times 100\][/tex]

In this case, the mass of gold is given as 14.9 g, and the total mass of the ring can be found by adding the masses of gold, silver, and copper:

[tex]\[\text{{Total mass}} = \text{{mass of gold}} + \text{{mass of silver}} + \text{{mass of copper}} = 14.9 \, \text{{g}} + 5.32 \, \text{{g}} + 5.32 \, \text{{g}} = 25.54 \, \text{{g}}\][/tex]

Substituting the values into the formula, we have:

[tex]\[\text{{Percent by mass of gold}} = \left( \frac{{14.9 \, \text{{g}}}}{{25.54 \, \text{{g}}}} \right) \times 100 \approx 58.2\%\][/tex]

Therefore, the percent by mass of gold in the 14-karat gold ring is approximately 58.2%.

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A blimp moving west with a force of 30 n encounters a 20 n headwind blowing east.the buoyant force experienced by the blimp is 500 n,and the force of gravity acting on it is 450 n.what are the net horizontal and vertical forces acting on the blimp?

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Answer:

The net horizontal force acting on the blimp is the difference between the force of the blimp moving west and the headwind blowing east. Since both forces are in opposite directions, we subtract them: 30 N - 20 N = 10 N. So the net horizontal force acting on the blimp is 10 N towards the west.

The net vertical force acting on the blimp is the difference between the buoyant force and the force of gravity. Since both forces are in opposite directions, we subtract them: 500 N - 450 N = 50 N. So the net vertical force acting on the blimp is 50 N upwards.

Choose the situation below that would result in an endothermic ΔHsolution.
a.When <
b.When >
c.When is close to
d.When >>
e.There isn't enough information to determine.

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An endothermic ΔHsolution is a solution where heat is absorbed or taken in. This means that the temperature of the system decreases as heat is being absorbed. In terms of the given situations, option a is the most likely scenario that would result in an endothermic ΔHsolution.

This is because when the temperature of the solution is lower than the temperature of the surrounding environment, the solution would absorb heat in order to reach thermal equilibrium. This would result in an endothermic reaction as heat is being absorbed by the solution. Options b and d suggest that the surrounding environment is cooler than the solution, which means that heat would be released or given off, resulting in an exothermic reaction. Option c suggests that the temperature of the solution and the surrounding environment are similar, which means that there would be little to no heat transfer. Therefore, the most likely situation that would result in an endothermic ΔHsolution is when the temperature of the solution is lower than the temperature of the surrounding environment.

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what does the 218 in polonium-218 represent? select one: a. the neutron number b. the atomic number c. the mass defect d. the mass number

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The number 218 in polonium-218 represents the mass number. The mass number is the sum of the number of protons and neutrons in an atom's nucleus.

In the case of polonium-218, the number 218 indicates that the nucleus contains 84 protons and 134 neutrons, giving it a total mass number of 218. This is important for determining the properties and behavior of the atom, including its stability, reactivity, and potential uses. The atomic number of polonium-218, which represents the number of protons in the nucleus, is 84, while the neutron number is 134. The mass defect is the difference between the mass of an atom and the sum of its individual protons and neutrons.

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Calculate the Ka of lactic acid (CH3CH(OH)COOH) given the following information. 40.0 mL of 0.2 M KOH are added to 100. mL of a 0.500 M lactic acid solution producing a pH of 3.134. Because it's a small number Canvas tries to round it to zero and can't handle it. You need to enter your answer in two parts as Ka = A x 10B. What is B (the exponent)?

Answers

The values of pKₐ is 3.8, and Kₐ is 1.66×10⁻⁴ of lactic acid (CHCH(OH)COOH).

What are pKₐ and Kₐ?

The quantitative measure of an acids potency in a solution is the acid dissociation constant, or Kₐ. The Bronsted-Lowry definition states that an acid serves as a proton donor and a base as a proton receiver. Chemists simplify Kₐ to a smaller quantity called pKₐ because Kₐ is frequently a very large number. The same object is expressed differently as Kₐ and pKₐ.

We know that,

pKₐ= -log Kₐ

Hence, Kₐ = 10^(-pKₐ).

As given,

Lactic acid will act as a weak acid and on reaction with strong base like KOH it will form acidic buffer.

HA + KOH ⇒ AK + H₂O

Concentration of Lactic acid (HA) = 0.500 m.

Volume = 100 ml

No. of moles = m × V

                     = 50.0 m moles.

Similarly, no. of moles in KOH = 8.0 m moles.

HA + KOH ⇒ KA + H₂O

Also using Henderson-Hasselbalch equation,

pH = PKₐ + log [salt]/[Acid]

pH = PKₐ + log [KA]/[HA]

Substitute values,

3.058 = PKₐ + log [8]/[42]

PKₐ = 3.058 + 0.72

PKₐ = 3.778

PKₐ ≈ 3.8

Then evaluate the value of Kₐ respectively,

Kₐ = 10⁻³°⁸

Kₐ = 16.63×10⁻⁵

Kₐ = 1.66×10⁻⁴

Hence, the values of pKₐ is 3.8, and Kₐ is 1.66×10⁻⁴ of lactic acid (CH₃CH(OH)COOH).

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an experimental plot of ln(k) vs. 1/t is obtained in lab for a reaction. the slope of the best-fit line for the graph is -2595 k. what is the value of the activation energy for the reaction in kj/mol?

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To find the activation energy, we need to use the Arrhenius equation: k=Ae^(-Ea/RT). By taking the natural logarithm of both sides, we get ln(k) = (-Ea/R)(1/T) + ln(A).

This equation has the same form as a linear equation, y = mx + b, where ln(k) is y, 1/T is x, -Ea/R is the slope, and ln(A) is the y-intercept. From the given slope, -2595 k, we can calculate the activation energy, Ea, using the gas constant, R = 8.314 J/mol*K. Ea = -2595 k * (-8.314 J/mol*K) = 21539 J/mol = 21.54 kJ/mol.  Based on the given information, you are working with the Arrhenius equation, which relates the reaction rate constant (k) to temperature (T) and activation energy (Ea). The equation is: ln(k) = -Ea/(R*T) + ln(A), where R is the gas constant (8.314 J/mol·K) and A is the pre-exponential factor.
When plotting ln(k) vs. 1/T, the slope of the best-fit line is equal to -Ea/R. In this case, the slope is -2595 K. To find the activation energy, use the formula: Ea = -slope * R.
Ea = -(-2595 K) * (8.314 J/mol·K) = 21567.3 J/mol
Since 1 kJ = 1000 J, convert Ea to kJ/mol:
Ea = 21567.3 J/mol * (1 kJ/1000 J) = 21.57 kJ/mol
The activation energy for the reaction is 21.57 kJ/mol.

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the concentration of carbon dioxide in the atmosphere is 3.9×10−4 . convert this number to decimal form

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The concentration of carbon dioxide in the atmosphere is 3.9×10−4 concentration of carbon dioxide in the atmosphere in decimal form is 0.00039.

To convert the number 3.9×10^(-4) to decimal form, we need to move the decimal point to the left by the exponent value of -4.

Starting with 3.9×10^(-4), we move the decimal point four places to the left:

3.9×10^(-4) = 0.00039

Therefore, the concentration of carbon dioxide in the atmosphere in decimal form is 0.00039.

Scientific notation, represented as 3.9×10^(-4), is a way to express very large or very small numbers using a combination of a coefficient and a power of 10. In this case, the coefficient is 3.9 and the exponent is -4. Moving the decimal point to the left or right is determined by the sign and value of the exponent. Converting scientific notation to decimal form makes it easier to understand and work with the numerical value, especially when comparing or performing calculations with other values in decimal format.

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Which of the following equilibria best represents the hydrolysis reaction that occurs in an aqueous solution of NH4​Cl ? a) Cl−(aq)+H3​O+(aq)⇌HCl(aq)+H2​O(n) b) NH4​+(aq)+H2​O()⇌NH3​(aq)+H3​O+(aq) c) NH4​+(aq)+OH−(aq)⇌NH3​(aq)+H2​O(n) d) Cl−(aq)+H2​O(Λ⇌HCl(aq)+OH−(aq) e) NH4​+(aq)+Cl−(aq)⇌NH4​Cl(s)​

Answers

The equilibrium that best represents the hydrolysis reaction that occurs in an aqueous solution of NH4Cl is:
b) NH4+(aq) + H2O(l) ⇌ NH3(aq) + H3O+(aq)

The correct answer to the question is (c) NH4+(aq)+OH−(aq)⇌NH3(aq)+H2O(n). This equation represents the hydrolysis reaction that occurs in an aqueous solution of NH4Cl. Hydrolysis is a chemical reaction in which water molecules react with ions or molecules in a solution to produce new compounds. In the case of NH4Cl, the salt is an acid salt, which means it can react with water to produce an acidic solution. The NH4+ ion reacts with water to form NH3 and H3O+ ions, while the OH- ion is left behind. This reaction establishes an equilibrium between the reactants and products and represents the hydrolysis of NH4Cl in an aqueous solution.

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When an alcohol is diluted in a solvent that cannot form hydrogen bonds with the alcohol, which of the following changes is expected for the IR absorption signal for the O–H bond? Select all that apply. A : Cause the peak to narrow. B : Shift the peak to a higher wavenumber. C : Shift the peak to a lower wavenumber. D : Cause the peak to broaden.
Of the following statements regarding the base peak in a mass spectrum, which are always true. Select all that apply.
A : The base peak is the tallest peak in the spectrum.
B : The base peak corresponds to the peak with the smallest m/z.
C : The base peak corresponds to the peak with the largest m/z.
D : The base peak is furthest to the right.
E : The base peak may not be present in spectrum.
F : The base peak corresponds to the most abundant ion.
please select from the highlighted ones in (). The presence of a bromine atom in a molecule will produce a mass spectrum with an (M+2)+• peak that is approximately (equal to or one-third or one-half) the intensity of the molecular ion peak because the 79Br isotope is found in (equal or greater or less) abundance compared to the 81Br isotope.

Answers

When an alcohol is diluted in a solvent that cannot form hydrogen bonds with the alcohol, the IR absorption signal for the O-H bond is expected to (B) shift to a higher wavenumber and (D) cause the peak to broaden.

This is because hydrogen bonding between alcohol and solvent causes a decrease in the strength of the O-H bond, which is reflected in the IR spectrum as a shift to a lower wavenumber and a narrowing of the peak. However, in the absence of hydrogen bonding, the O-H bond is stronger and the peak shifts to a higher wavenumber and broadens.
The base peak in a mass spectrum corresponds to the (F) most abundant ion and may not necessarily be the tallest or smallest/largest m/z value or furthest to the right. The base peak is the peak that has the highest intensity and represents the ion that is most commonly produced during the ionization process.
The presence of a bromine atom in a molecule will produce a mass spectrum with an (M+2)+• peak that is approximately (one-third) the intensity of the molecular ion peak because the 79Br isotope is found in (less) abundance compared to the 81Br isotope. This is because the natural abundance of 81Br is only about one-third of that of 79Br.

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Which is the correct cell notation for the following reaction? Au3+(aq) + Al(s) rightarrow Al3+(aq) + Au(s) a. AI3(aq)|Al(s)||Au3+(aq)|Au(s) b. AI(s)|Al3+(aq)||Au3+(aq)|Au(s) c. AI3+(aq)|Au(s)||Au3+(aq)|AI(s) d. Au(s)|AI(s)||Au3+(aq)|AI3+(aq)

Answers

The correct cell notation would be b. AI(s)|Al^{3+}(aq)||Au^{3+}(aq)|Au(s)

The correct cell notation for the given reaction,

[tex]Au^{3+}(aq) + Al(s) \rightarrow Al^{3+}(aq) + Au(s)[/tex], can be determined by representing the anode, cathode, and salt bridge in the cell.

The anode represents the oxidation half-reaction, where Al(s) is oxidized to [tex]Al^{3+}(aq)[/tex]. It is written on the left side of the cell notation. The cathode represents the reduction half-reaction, where [tex]Au^{3+}(aq)[/tex] is reduced to Au(s). It is written on the right side of the cell notation.

AI(s) represents the anode electrode, where Al(s) is undergoing oxidation.

[tex]Al^{3+}(aq)[/tex] represents the [tex]Al^{3+}(aq)[/tex] ions in solution.

|| represents the salt bridge, which provides ionic contact between the anode and cathode compartments.

Au(s) represents the cathode electrode, where [tex]Au^{3+}(aq)[/tex] is undergoing reduction to Au(s).

Therefore, option b is the correct cell notation for the given reaction.

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an inventor claims to have invented a heat pump whose cop is 10 when operated between an energy sink at 35oc and a source at 20oc. is this claim valid? please show the work done

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The inventor's claim of achieving a coefficient of performance (COP) of 10 for a heat pump operating between an energy sink at 35°C and a source at 20°C is not valid.

The coefficient of performance (COP) for a heat pump is defined as the ratio of the desired heat transfer (Qh) to the input work (W) required. It can be calculated using the formula:

COP = Qh / W

In this case, the COP is claimed to be 10. However, to determine the validity of this claim, we need to calculate the COP based on the given temperature conditions.

The COP of a heat pump depends on the temperature difference between the energy sink (the location where heat is rejected) and the source (the location from where heat is extracted). The COP increases as the temperature difference decreases.

The given temperature conditions state that the energy sink temperature (Tsink) is 35°C, and the source temperature (Tsource) is 20°C.

To calculate the COP, we need the actual values for Qh (desired heat transfer) and W (input work). Unfortunately, the given information does not provide these values, making it impossible to directly calculate the COP.

However, based on typical operating conditions for heat pumps, achieving a COP of 10 between a 35°C energy sink and a 20°C source is highly unlikely. Heat pump systems typically have COP values ranging from 2 to 6, depending on various factors such as system efficiency, temperature difference, and the type of heat pump technology used.

Conclusion: Without the specific values for desired heat transfer (Qh) and input work (W), it is not possible to directly calculate the COP. However, based on typical operating conditions, achieving a COP of 10 for a heat pump operating between a 35°C energy sink and a 20°C source is highly unlikely. Further information and data would be required to evaluate the validity of the inventor's claim.

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Two wines are available for blending: one tank of 2000 L has a TA of 8.6 g/L another tank of 4000 L has a TA of 6.2 g/L.
How much volume of the low acid wine do you need to mix with all of the 8.6 g/L TA wine to have the resulting blend equivalent to 7.2 g/L? Show your calculations

Answers

To determine the volume of low-acid wine needed to achieve a resulting blend with a TA of 7.2 g/L, we can set up an equation based on the principle of conservation of acid. The total acid content before and after blending should remain the same.

Let V be the volume of low-acid wine (in liters) that needs to be added.

The equation can be written as:

(8.6 g/L) * 2000 L + (6.2 g/L) * 4000 L = (7.2 g/L) * (2000 L + 4000 L + V)

Let's solve the equation to find the value of V:

(8.6 g/L) * 2000 L + (6.2 g/L) * 4000 L = (7.2 g/L) * (6000 L + V)

17200 g + 24800 g = 43200 g + 7.2 gV

42000 g = 43200 g + 7.2 gV

-1200 g = 7.2 gV

V = -1200 g / 7.2 g

V ≈ -166.67 L

Since volume cannot be negative, we can conclude that no volume of low-acid wine needs to be added to achieve a resulting blend with a TA of 7.2 g/L. The 8.6 g/L TA wine alone can be used to obtain the desired blend.

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PLEASE HELP ME WITH THIS CHEMISTRY HOMEWORK!!! WILL GIVE BRAINLIEST!!! :) 15 POINTS!!!

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The given chart mentions electrodes with notations, standard reduction potentials, half-reactions and total voltage, while also mentioning the anode and cathode part of the batteries.

The completed chart is attached as an image below.

Standard reduction potential refers to the tendency of an element to gain electrons, that is get reduced under standard conditions of pressure and temperature.

The higher the positive value, the more would be the tendency of the element to get reduced and the stronger it will work as an oxidizing agent.

The more the negative value, the least would be the tendency to get reduced and the stronger it will work as a reducing agent.

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cr2o72−(aq) i−(aq)→cr3 (aq) io3−(aq) (acidicsolution) express your answer as a chemical equation. identify all of the phases in your answer.

Answers

The balanced chemical equation for the reaction between dichromate ion (Cr2O7^2-) and iodide ion (I-) in an acidic solution can be written as:

2 Cr2O7^2-(aq) + 10 I-(aq) + 16 H+(aq) → 4 Cr^3+(aq) + 10 IO3-(aq) + 8 H2O(l)

- (aq) represents aqueous, indicating that the species is dissolved in water.

- (l) represents liquid, specifically water in this case.

Thus, the equation indicates that two moles of dichromate ions (Cr2O7^2-), ten moles of iodide ions (I-), and sixteen moles of hydrogen ions (H+) in an acidic solution react to form four moles of chromium(III) ions (Cr^3+), ten moles of iodate ions (IO3-), and eight moles of liquid water (H2O).

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Learning Task No.5
identify the word or words being described by each statement.Chose your answer from box below.
1.It is the process of changing liquid to gas.
2.It is the process when water from plants evaporates.
3.It is the liquid part of the earth.
4.It is the cotinous movement of water on the earth's surface
5.The process of changing gas to liquid.
Please help ma to answer it
Thank you and goodbless ​

Answers

The appropriate term for each definition is given as follows:

It is the process of changing liquid to gas - evaporationIt is the process when water from plants evaporates - transpirationIt is the liquid part of the earth - hydrosphere It is the continous movement of water on the earth's surface - water cycleThe process of changing gas to liquid - condensation

What is evaporation?

Evaporation is the process of a liquid converting to the gaseous state while condensation is the conversion of a gas to a liquid.

Hydrosphere is all the liquid waters of the Earth, as distinguished from the land and the gases of the atmosphere.

Transpiration is the loss of water by evaporation in terrestrial plants, especially through the stomata of their leaves.

Water cycle is the continuous movement of water within the Earth and atmosphere.

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what is the ph of a formic acid solution that contains 0.025 m hcooh and 0.018 m hcoo−? (ka(hcooh) = 1.8 × 10-4)

Answers

The pH of the formic acid solution is approximately 2.17.

To find the pH of a formic acid (HCOOH) solution, we need to consider the dissociation of formic acid and the concentration of H+ ions in the solution.

The dissociation of formic acid can be represented by the following equilibrium equation:

HCOOH(aq) ⇌ H+(aq) + HCOO-(aq)

The equilibrium constant expression (Ka) for this reaction is given as:

Ka = [H+(aq)][HCOO-(aq)] / [HCOOH(aq)]

Given that the Ka value for formic acid is 1.8 × 10^(-4), we can set up the following expression:

1.8 × 10^(-4) = [H+(aq)][HCOO-(aq)] / [HCOOH(aq)]

Since the concentration of HCOOH is 0.025 M and the concentration of HCOO- is 0.018 M, we can assume that the concentration of H+ ions formed at equilibrium is x.

Thus, the equilibrium expression becomes:

1.8 × 10^(-4) = x^2 / (0.025 - x)

To simplify the calculation, we can assume that x is very small compared to 0.025, so we can approximate 0.025 - x as 0.025.

1.8 × 10^(-4) = x^2 / 0.025

Cross-multiplying, we get:

4.5 × 10^(-6) = x^2

Taking the square root of both sides, we find:

x ≈ 6.71 × 10^(-3)

The concentration of H+ ions is approximately 6.71 × 10^(-3) M.

The pH is calculated using the formula:

pH = -log[H+]

pH = -log(6.71 × 10^(-3))

pH ≈ 2.17

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We have classified each of the characteristics based on whether it applies to fission, fusion, or both i.e. shown as follows :

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Fission and fusion are two different processes of nuclear reactions. Fission is the splitting of an atomic nucleus into two smaller nuclei, accompanied by the release of energy. It usually occurs in heavy elements like uranium or plutonium. On the other hand, fusion is the process of combining two lighter atomic nuclei into a heavier nucleus, releasing a large amount of energy. This process occurs in stars, including our Sun.

Both fission and fusion involve the release of energy, but their mechanisms are different. In fission, the nucleus is split into two smaller ones, while in fusion, two nuclei are combined to form a larger one. The energy released in fission comes from the conversion of mass into energy, while in fusion, it comes from the strong force that binds the nuclei together. When it comes to characteristics, some apply only to fission or fusion, while others apply to both. For example, the release of energy is a characteristic of both fission and fusion, but the types of radiation produced (alpha, beta, gamma) are different for each process. Additionally, the byproducts of fission reactions are usually radioactive, while the products of fusion are not.

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calculate the ph of each of the following solutions. (a) 0.500 m honh2 (kb = 1.1 ✕ 10-8)

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To calculate the pH of a solution, we need to determine the concentration of hydrogen ions ([H+]). In the case of the solution of HONH2, we can use the given Kb value to find the concentration of hydroxide ions ([OH-]). Then, we can use the fact that water autoionizes to calculate the concentration of hydrogen ions ([H+]).

The Kb expression for HONH2 is:

Kb = [OH-][HONH2]/[H2ONH]

Since we are given the concentration of HONH2 and Kb, we can rearrange the equation to solve for [OH-].

[HONH2] = 0.500 M

Kb = 1.1 × 10^(-8)

Let's assume x is the concentration of [OH-].

[HONH2] = [H2ONH]

[HONH2] = [OH-] + [H2ONH]

0.500 = x + x

0.500 = 2x

x = 0.250

Now that we have the concentration of [OH-] as 0.250 M, we can use the fact that water autoionizes to calculate the concentration of [H+]. At 25°C, the concentration of [H+] is equal to [OH-] since water is neutral.

[H+] = [OH-] = 0.250 M

The pH is calculated using the formula:

pH = -log[H+]

pH = -log(0.250)

pH ≈ 0.60, Therefore, the pH of the 0.500 M HONH2 solution is approximately 0.60.

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At a certain temperature the vapor pressure of pure acetic acid HCH3CO2 is measured to be 226.torr. Suppose a solution is prepared by mixing 127.g of acetic acid and 141.g of methanol CH3OH. Calculate the partial pressure of acetic acid vapor above this solution. Round your answer to 3 significant digits.
Note for advanced students: you may assume the solution is ideal.

Answers

The partial pressure of acetic acid vapor above the solution, prepared by mixing 127 g of acetic acid and 141 g of methanol, is approximately 45.5 torr, according to Raoult's law and mole fraction calculations.

Determine how to find the partial pressure of acetic acid?

To calculate the partial pressure of acetic acid vapor, we need to use Raoult's law, which states that the vapor pressure of a component in a solution is proportional to its mole fraction in the solution.

The mole fraction (X) is calculated by dividing the moles of acetic acid by the total moles of both acetic acid and methanol.

First, we need to convert the given masses of acetic acid and methanol to moles. The molar mass of acetic acid (CH₃COOH) is 60.05 g/mol, and the molar mass of methanol (CH₃OH) is 32.04 g/mol.

The moles of acetic acid (n₁) can be calculated as follows:

n₁ = mass of acetic acid / molar mass of acetic acid

  = 127 g / 60.05 g/mol

  = 2.116 mol

Similarly, the moles of methanol (n₂) can be calculated:

n₂ = mass of methanol / molar mass of methanol

  = 141 g / 32.04 g/mol

  = 4.399 mol

The total moles of both components (n_total) is the sum of n₁ and n₂:

n_total = n₁ + n₂

       = 2.116 mol + 4.399 mol

       = 6.515 mol

Next, we calculate the mole fraction of acetic acid:

X(acetic acid) = n₁ / n_total

              = 2.116 mol / 6.515 mol

              = 0.324

Since the vapor pressure of pure acetic acid is given as 226 torr, we can use Raoult's law to find the partial pressure of acetic acid vapor above the solution:

Partial pressure of acetic acid vapor = X(acetic acid) * vapor pressure of pure acetic acid

                                  = 0.324 * 226 torr

                                  ≈ 73.224 torr

Rounding the answer to 3 significant digits, the partial pressure of acetic acid vapor above the solution is approximately 45.5 torr.

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The compound that is both a product of the last reaction and reactant for the first reaction of the Krebs Cycle is __ , which has __ carbons.
Citrate; 6
Succinyl-CoA; 4
Acetyl-CoA; 2
Oxaloacetate; 6
Oxaloacetate; 4
Succinate; 6

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The compound that is both a product of the last reaction and a reactant for the first reaction of the Krebs Cycle is Oxaloacetate; 4 carbons

The Krebs Cycle, also known as the citric acid cycle or tricarboxylic acid cycle, is a series of chemical reactions that occur in the mitochondria of cells, playing a crucial role in cellular respiration. During the cycle, various compounds are metabolized and regenerated.

Oxaloacetate is a four-carbon compound that serves as a reactant in the first reaction of the Krebs Cycle, where it combines with acetyl-CoA to form citrate. This reaction is catalyzed by the enzyme citrate synthase. Oxaloacetate is then regenerated at the end of the cycle.

Citrate, which is formed from the combination of oxaloacetate and acetyl-CoA, undergoes a series of reactions within the Krebs Cycle, leading to the generation of energy-rich molecules such as ATP and NADH. Ultimately, oxaloacetate is produced again, allowing the cycle to continue.

In conclusion, the compound that is both a product of the last reaction and a reactant for the first reaction of the Krebs Cycle is oxaloacetate, which contains four carbon atoms.

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Which of the following compounds has a name which contains the prefix di-? Al(NO3)3 a. 6. NO₂ Ba3(PO4)2 Oc dkzs 503

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Ba3(PO4)2 is the compound that contains the prefix di-.

To answer your question, the compound that has a name which contains the prefix di- is Ba3(PO4)2. The prefix di- indicates that there are two of the same type of atom or group in the compound. In this case, there are two phosphate groups (PO4) in the compound, which is why it is named as dibarium phosphate or barium phosphate. It is important to note that prefixes are used in naming compounds to indicate the number of atoms or groups present in the molecule. Prefixes like tri-, tetra-, penta-, etc. are commonly used to indicate the number of atoms or groups. Naming compounds correctly is essential in chemistry as it helps to avoid confusion and ensures that accurate information is communicated.

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2 NO(g) + O2(g) + 2 NO2(9) Which would increase the partial pressure of NO, at equilibrium? Removing some NOg) from the system Adding an appropriate catalyst Adding a noble gas to increase the pressure of the system Decreasing the volume of the system

Answers

In a chemical equilibrium, the forward and backward reactions occur at the same rate, and there is no net change in the concentration of reactants and products. Out of the given options, decreasing the volume of the system would increase the partial pressure of NO at equilibrium.

This state is characterized by the equilibrium constant (Kc) which is a ratio of product concentrations to reactant concentrations.

In the given reaction, 2 NO(g) + O2(g) ⇌ 2 NO2(g), the equilibrium constant expression would be Kc = [NO2]^2/[NO]^2[O2].
Now, if we look at the question, it asks which of the given options would increase the partial pressure of NO at equilibrium. To answer this, we need to understand the effect of each option on the equilibrium.
Removing some NO(g) from the system would decrease the concentration of NO, causing the system to shift towards the side with more NO to restore equilibrium. This means that the partial pressure of NO would decrease.
Adding an appropriate catalyst would increase the rate of the forward and backward reactions equally, but it would not affect the position of equilibrium or the partial pressures of the gases.
Adding a noble gas to increase the pressure of the system would not affect the equilibrium position as the partial pressures of the reacting gases would increase proportionately, and the equilibrium constant (Kc) would remain the same.
Decreasing the volume of the system would increase the pressure of the gases, causing the system to shift towards the side with fewer moles of gas to restore equilibrium. In this case, the forward reaction would be favored, resulting in an increase in the partial pressure of NO.
In conclusion, out of the given options, decreasing the volume of the system would increase the partial pressure of NO at equilibrium.

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to what final temperature (in °c) would 19.6 kg of material at 32°c be raised if 134 kj of heat is supplied? assume that the cp value for this material is 498 j/kg-k.

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The final temperature of the 19.6 kg material would be approximately 108.5°C when 134 kJ of heat is supplied.

To find the final temperature, we can use the equation:

[tex]\(Q = mc\Delta T\)[/tex]

Where:

Q = heat supplied = 134 kJ = 134,000 J

m = mass of the material = 19.6 kg

c = specific heat capacity of the material = 498 J/kg·K

[tex]\(\Delta T\)[/tex] = change in temperature (final temperature - initial temperature)

We need to rearrange the equation to solve for [tex]\(\Delta T\)[/tex]:

[tex]\(\Delta T = \frac{Q}{mc}\)[/tex]

Substituting the given values:

[tex]\(\Delta T = \frac{134,000}{19.6 \times 498}\)\\\(\Delta T \approx 54.08\)[/tex]

Therefore, the final temperature is:

[tex]\(T_{\text{final}} = 32 + \Delta T \approx 32 + 54.08\)\\\\\(T_{\text{final}} \approx 86.08\)[/tex]

Rounding to one decimal place, the final temperature is approximately 86.1°C.

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An oxidation reaction involves the addition of hydrogen atoms to an organic compound. Select one: True False

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False. An oxidation reaction typically involves the loss of hydrogen atoms or the gain of oxygen atoms, rather than the addition of hydrogen atoms to an organic compound.

In organic chemistry, oxidation refers to the process in which a compound loses electrons, resulting in an increase in its oxidation state. This can occur through the removal of hydrogen atoms, the addition of oxygen atoms, or the transfer of electrons to a more electronegative atom. The addition of hydrogen atoms to an organic compound is known as reduction, not oxidation. Reduction involves the gain of electrons or the addition of hydrogen atoms, resulting in a decrease in the oxidation state of the compound.

An example of an oxidation reaction is the conversion of an alcohol to an aldehyde or a ketone. In this reaction, the alcohol loses hydrogen atoms and gains an oxygen atom from an oxidizing agent such as a chromium compound or potassium permanganate. This process increases the oxidation state of the carbon atom in the alcohol. Therefore, the statement that an oxidation reaction involves the addition of hydrogen atoms to an organic compound is false.

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Select the most likely lattice types for each of the following salts: (a) BeF2; (b) CaO; (c) BeI2; and (d) CaF2. The radius of Be is 34 pm, F is 133 pm, Ca is 106 pm, O is 140 pm, I is 220 pm, and Te is 211 pm.

Answers

The most likely lattice types for each of the given salts are as follows: (a) [tex]BeF_2[/tex] - ionic; (b) CaO - ionic; (c) [tex]BeI_2[/tex] molecular; and (d)[tex]CaF_2[/tex] - ionic.

Explanation: The determination of lattice types for salts involves considering the nature of bonding between the constituent atoms and their sizes.

(a) For the first salt, the cation and anion have a large size difference, indicating the formation of an ionic lattice.

(b) The second salt consists of a large cation and small anions, suggesting the formation of an ionic lattice.

(c) In the third salt, the constituent atoms are bonded through covalent interactions, forming a molecular lattice.

(d) The fourth salt has a similar cation-anion size ratio to the second salt, indicating the formation of an ionic lattice.

In summary, based on the size of the constituent atoms and the nature of bonding, it is likely that [tex]BeF_2[/tex] and [tex]CaF_2[/tex] have ionic lattices, while [tex]BeI_2[/tex] has a molecular lattice. CaO is also likely to have an ionic lattice.

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