Why does ice float in liquid water? the high surface tension of liquid water keeps the ice on top. stable hydrogen bonds keep water molecules of ice farther apart than water molecules of liquid water. the crystalline lattice of ice causes it to be denser than liquid water. the ionic bonds between the molecules in ice prevent the ice from sinking?

Answers

Answer 1
Stable hydrogen bonds keep water molecules of ice farther apart than water molecules of liquid water.
Answer 2

Since the molecules can move wider apart due to the hydrogen bonds created when water freezes into ice, the ice floats in the water because it has a lower density overall.

What is surface tension of liquid?

The attractive force that the molecules below a liquid's surface exert on its surface molecules tends to drag those molecules into the bulk of the liquid, giving the liquid the shape with the least amount of surface area.

When water turns to ice, the ice loses a lot of its water-like density and continues to float on the lake's surface.

Water loses density when it grows colder below 4° Celsius, forcing water that is about to freeze to float to the top.

Therefore, This occurs as a result of the water molecules losing energy and moving less than the temperature drops.

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Related Questions

A 18.21 g sample of a compound contains 5.81 g potassium (k), 5.27 g chlorine (cl), and oxygen (o). calculate the empirical formula.

Answers

To determine the empirical formula of the compound given, we need to determine the ratio of the elements present in the compound. To do that we use the given amount of sample of the compound and the masses of each of the element included. Then, we calculate for the number of moles of each element. We do as follows:
                       mass                                       moles
Potassium       5.81                                       0.1486
Chlorine          5.27                                       0.1487
Oxygen           18.21 - 5.81 - 5.27 = 7.13     0.4456

Dividing the number of moles of each element with the smallest value of number of moles, we will have the ratio of the elements:

K = 1  Cl = 1 O = 3

Therefore, the empirical formula would be KClO3.

Final answer:

The empirical formula of the compound is KClO3.

Explanation:

To calculate the empirical formula, we need to determine the ratio of the different elements present in the compound. In this case, we have 5.81 g of potassium (K), 5.27 g of chlorine (Cl), and an unknown amount of oxygen (O).

To find the amount of oxygen, we subtract the combined mass of potassium and chlorine from the total mass of the compound: 18.21 g - (5.81 g + 5.27 g) = 7.13 g.

Now we can find the moles of each element by dividing their masses by their molar masses (K = 39.10 g/mol, Cl = 35.45 g/mol, O = 16.00 g/mol). The moles of each element are approximately K: 0.148, Cl: 0.149, O: 0.445.

Dividing these mole values by the smallest one (0.148), we find that the ratio of elements is approximately K: 1, Cl: 1, O: 3. Therefore, the empirical formula of the compound is KClO3.

What is the formula for manganese (ii) fluoride decahydrate? (you may use a * to represent the dot in the formula.)?

Answers

These types of molecules are called hydrates. They have a certain number of moles attached to the salt. Their characteristic is being hygroscopic. That means that when they are exposed to air, they readily solvate. 

The formula for Manganese Fluoride Decahydrate will involve the formula Mn, F and H₂O. In ionic form, Manganese is Mn⁺² while fluoride is in F⁻. When they are brought together, their superscripts are 'cross-multiplied' and becomes their respective subscripts. The compound becomes MnF₂. Then, we add the decahydrate which means 10 moles of H₂O. Hence, the formula for Manganese Fluoride Decahydrate is MnF₂*10H₂O.

Answer:

MnF₂*10H₂O.

Explanation:

A(n) _____ is a region where fresh water and salt water mix.

Answers

It is called an estuary.

Something with a density greater than 1.00 g ml

Answers

Something with a density greater than 1.00 g ml will sink in waterThe density of water is 1 gm/cm^3=1000 kg/m^3, therefore, any element or object with density greater than 1 will sink in water.
Examples of elements with density greater than 1:
Aluminum (2700 kg/m^3 = 2.7 gm/cm^3)
Nickel ( 8910 kg/m^3 = 8.91 gm/cm^3)

what is the definition of a lewis base?

Answers

A lewis base is a compound or ionic species that can donate an electron pair to an acceptor compound. I hope this helps love! <3

B. A substance that donates electron to form a covalent bond

A key step in the extraction of iron from its ore is feo(s) + co(g) fe(s) + co2(g) kp = 0.403 at 1000°c. this step occurs in the 700°c to 1200°c zone within a blast furnace. what are the equilibrium partial pressures of co(g) and co2(g) when 1.58 atm co(g) and excess feo(s) react in a sealed container at 1000°c?

Answers

Final answer:

The extraction of iron from its ore involves reduction with carbon monoxide at high temperatures, yielding iron metal and carbon dioxide. The equilibrium partial pressures of CO(g) and CO2(g) can be determined by employing the kp equation with initial and equilibrium pressures.

Explanation:

The question is asking for the partial pressures of CO(g) and CO2(g) during the extraction of iron from its ore. Our reaction of interest is FeO(s) + CO(g) → Fe(s) + CO2(g), where kp = 0.403 at 1000°C. The reaction involves reducing FeO(s), iron(II) oxide, to Fe(s), i.e., iron metal, with carbon monoxide, or CO(g), in a high-temperature furnace. In the process, CO(g) is converted to CO2(g), or carbon dioxide gas. Given an initial pressure of CO(g) as 1.58 atm and that FeO(s) is in excess, at equilibrium, the partial pressure of CO(g) will be decreased as it is used up, while that of CO2(g) will be increased as it is produced.

From the kp equation [P of products / P of reactants], we have kp = PCO2 / PCO. We need to find the decrease in partial pressure of CO (x) such that the increase in partial pressure of CO2 equals x. This gives us PCO = (Initial P of CO) - x and PCO2 = x. Substituting these expressions into the kp equation, we get 0.403 = (x) / (1.58 - x). Solving this equation will yield the equilibrium pressures of CO(g) and CO2(g).

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The equilibrium partial pressures are approximately 0.454 atm for CO₂(g) and 1.126 atm for CO(g).

Firstly, we need to set up the equilibrium expression using the given Kp:

Kp = P(CO₂) / P(CO)
0.403 = P(CO₂) / (1.58 - x)
Assuming x is the change in pressure for both CO₂ and CO:

Kp = P(CO₂)/(1.58 − P(CO2)) = 0.403
Let P(CO₂) = y. Hence, 0.403 = y / (1.58 − y)
Solve for y (P(CO₂)):
0.403 (1.58 − y) = y
0.63734 = 1.403y
y = 0.63734 / 1.403 ≈ 0.454 atm

Thus, the equilibrium partial pressure of CO₂(g) is 0.454 atm, and for CO(g) it is 1.58 - 0.454 = 1.126 atm.

The net ionic equation for the reaction between aqueous sulfuric acid and aqueous sodium hydroxide is ________.

Answers

H₂SO₄(aq) + 2NaOH(aq) → Na₂SO₄(aq) + 2H₂O(l)

2H⁺ + SO₄²⁻ + 2Na⁺ + 2OH⁻ → 2Na⁺ + SO₄²⁻ + 2H₂O

H⁺ + OH⁻ → H₂O (the net ionic equation)

The net ionic equation for the reaction will be [tex]\rm \bold{2\;H^+\;+\;2\;OH^-\;\rightarrow\;2\;H_2O}[/tex].

A chemical equation has been the chemical representation of the reactants involved with the formed products. The ionic equation has been consisted of the ionic form of the reactants and products.

The reaction for Sulfuric acid and Sodium hydroxide will be:

[tex]\rm H_2SO_4\;+\;2\;NaOH\;\rightarrow\;Na_2SO_4\;+\;2\;H_2O[/tex]

The ionic equation for reactants will be:

[tex]\rm H_2SO_4\;+\;2\;NaOH[/tex] = [tex]\rm 2\;H^+\;+\;SO_4^2^-\;+\;2\;Na^+\;2\;OH^-[/tex]

The ionic equation for the products has been:

[tex]\rm Na_2SO_4\;+\;2\;H_2O[/tex] = [tex]\rm 2\;Na^+\;+\;SO_4^2^-\;+\;4\;H^+\;+\;2\;O^-[/tex]

The total equation will be:

[tex]\rm 2\;H^+\;+\;SO_4^2^-\;+\;2\;Na^+\;2\;OH^-[/tex] [tex]\rightarrow[/tex] [tex]\rm 2\;Na^+\;+\;SO_4^2^-\;+\;4\;H^+\;+\;2\;O^-[/tex]

In the net ionic equation, the ions same on both sides of the products and reactants are eliminated.

The net ionic equation for the reaction will be:

[tex]\rm 2\;H^+\;+\;2\;OH^-\;\rightarrow\;4\;H^+\;+\;2O^-[/tex]

[tex]\rm \bold{2\;H^+\;+\;2\;OH^-\;\rightarrow\;2\;H_2O}[/tex]

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The best recrystallization solvent for benzil was ethanol. what would be the consequence of using acetone as the recrystallization solvent for benzil? explain.

Answers

Recrystallization is another method of purification of solids in which an impure solid is crystallize repeatedly to obtain amore pure solid and a larger one. Ethanol is better suited as solvent in recrystallization of benzene than acetone because it becomes soluble with benzene at a higher temperature. Ethanol is non polar and may react well with benzyl but acetone are is non polar. A difference in their polarity, especially in heating both benzyl and the solvent can lead to more impurities that cannot be removed.

What are the vertical columns on a periodic table called

Answers

The answer would be Groups, or also  known as families.
The vertical columns on the period are called groups. There are 18 groups on the periodic table, and elements that are members of the same group share similar traits.

4 NH3 + 6 NO → 5 N2 + 6 H2O How many moles of NH3 are necessary to produce 0.824 mol N2?

Answers

4 mol NH₃ → 5 mol N₂
x mol NH₃ → 0.824 mol N₂

x=0.824*4/5=0.6592 mol

The number of moles of NH₃ that are necessary to produce 0.824 mol N₂ is 0.6592 mol.

What are moles?

The mole is a SI unit of measurement that is used to calculate the quantity of any substance. Mass is defined as the product of the compound's molar mass and the moles of the substance.

Many compounds have a molar mass that may be estimated by dividing the compound's mass by the number of moles. A physical body's mass is the amount of matter it contains. Ammonia is a gas and nitrogen is also a gas.

4 mol NH₃ → 5 mol N₂

x mol NH₃ → 0.824 mol N₂

x = 0.824 x 4/5 = 0.6592 mol

Therefore, the number of moles of NH₃ that are necessary to produce 0.824 mol N₂ is 0.6592 mol.

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Calculate the mass in grams of iodine (i 2 ) that will react completely with 20.4 g of aluminum (al) to form aluminum iodide (ali

Answers

3I₂ + 2Al → 2AlI₃

m(I₂)=3M(I₂)m(Al)/{2M(Al)}

m(I₂)=3*253.8*20.4/{2*27.0}=287.64 g

In metallic bonding, the electrons

Answers

A metallic bond is a bond between two metals or cations. In metallic bonding, the electrons are shared between the positive ions. The electrons move around between atoms. This is what allows objects with metallic bonds to be malleable and able to conduct electricity.

Answer:

In metallic bonds the electrons of the valence shell can move freely within the metal, thus explaining its electric conductivity.

One of the several oxides of tin found in the earthâs crust is 78.77% by mass tin. what is its empirical formula and name?

Answers

To determine the empirical formula of the compound given, we need to determine the ratio of each element in the compound. To do that we assume to have 100 grams sample of the compound with the given composition. Then, we calculate for the number of moles of each element. We do as follows:
         mass        moles
Sn     78.77       0.6636
O      21.23       1.3269

Dividing the number of moles of each element with the smallest value, we will have the empirical formula:

         moles                 ratio
Sn    0.6636          0.6636/0.6636 = 1
O     1.3269          1.3269/0.6636 = 2

The empirical formula would be SnO2.

Final answer:

The empirical formula of the tin oxide with 78.77% tin by mass is SnO2, also known as tin (IV) oxide.

Explanation:

One of the several oxides of tin found in the earth's crust is 78.77% by mass tin. To determine its empirical formula and name, we first assume a 100 g sample for simple calculations. This approach implies we have 78.77 g of tin (Sn) and the remainder, 21.23 g, being oxygen (O).

To find the mole ratio, we divide the mass of each element by its respective atomic mass (Sn = 118.71 g/mol, O = 16.00 g/mol), resulting in:

For tin: 78.77 g / 118.71 g/mol = 0.663 molesFor oxygen: 21.23 g / 16.00 g/mol = 1.327 moles

By dividing each element's mole count by the smallest number of moles obtained, we find the empirical formula ratio. In this case, the ratio for Sn to O approximates to 1:2. Hence, the empirical formula of the tin oxide in question is SnO2, which is commonly named tin (IV) oxide.

In the reaction of 1.23 g of salicylic acid, molar mass 138.12 g/mol, with 2.85 g of acetic anhydride, molar mass 102.10 g/mol, a student obtained 1.39 g of acetylsalicylic acid, molar mass 180.17 g/mol. What is the percent yield?


I found that salicylic acid was the limiting reactant so do I just find the mass from there?

Answers

The balanced reaction would be written as:
C7H6O3 + C4H6O3--->C9H8O4 + HC2H3O2
To determine the percent yield, we need to first determine the theoretical yield if the reaction were to proceed completely. Then, we divide the actual yield that is given to the theoretical yield times 100 percent. The limiting reactant from the reaction would be salicylic acid. We do as follows: 

Theoretical yield: 1.23 g C7H6O3 ( 1 mol / 138.21 g ) ( 1 mol C9H8O4 / 1 mol C7H6O3 ) ( 180.157 g / mol ) = 1.60 g C9H8O4 should be produced

Percent yield = 1.39 / 1.60 x 100 = 86.88%

Thus, only 86.88% of the theoretical 
C9H8O4 is being produced.
Final answer:

Yes, salicylic acid is the limiting reactant. The theoretical yield is calculated using the moles of the limiting reactant and converting it to grams of the product. The percent yield is then determined by comparing the actual yield to the theoretical yield.

Explanation:

Yes, you are correct that salicylic acid is the limiting reactant in this reaction. The first step in this scenario is to calculate the theoretical yield, which is the quantity of product that would be produced assuming that the reaction proceeds perfectly and all of the limiting reactant is consumed. This is done by calculating the moles of the limiting reactant (salicylic acid), then using stoichiometry to convert this to moles of the product (acetylsalicylic acid), and finally converting this to grams. The next step is to calculate the actual yield, which is the amount of product that was actually produced in the reaction, and then use these values to calculate the percent yield using the formula:

Percent Yield = (Actual Yield / Theoretical Yield) x 100%

In this case, the actual yield is given as 1.39 g of acetylsalicylic acid. So, you would calculate the percent yield by dividing this value by the theoretical yield (which you calculated in the previous step) and then multiply by 100%.

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Which best describes the definition for the atomic mass of an element?

Answers

atomic mass is the mass of ONE ATOM of that element

Answer: it is a weighted average of the masses of an element’s isotopes

Explanation:

Except in the case of hydrocarbons, when naming virtually all compounds made up of two elements, the second element mentioned

Answers

The second element would end with the suffix, -ide

goodluck partner, :-)

Potassium-40 has a half-life of 1.25 billion years (by) and decays to argon-40. how old is a fossil that has a 40k/40ar ratio of ~ 26%?

Answers

You can do a very quick estimation by telling the ~ 26% is close to 25%, end then two half-life have passed: one from 100% to 50% concentration, and other from 50% to 25% concentration. So, 2 * 1.25 billion years = 2.50 billion years.

The answer, then is that the fossil is 2.50 by old.

Given that this method has an accuracy of +/- 10% this answer is good enough.

For didactical purposes, I am goint to show you the exact procedure.

C = Co * e^ (- kt)

Half-life time => C = Co / 2

=> C / Co = (1/2) = e ^ (-kt)

=> -kt = ln(1/2) => kt = ln(2)

t = 1.25 by => k (1.25) = ln(2) => k = ln(2) / 1.25 = 0.5545

=> C/Co = e ^ (-kt)

In the problem C/Co = 26/100 => 0.26 = e^ (-0.5545t)

=> -0.5545t = ln (0.26)

=> t = - ln (0.26) / 0.5545 = 2.43 by.

So with the exact procedure you obtain 2.43 by while with the estimation that ~26% is close to 25% you obtain 2.50 by.

How can you distinguish a substance from a mixture

Answers

Mixtures are physically combined structures that can be separated into their original components. 
Substances, if chemical, is composed of one type of atom or molecule.
It's basically a particular kind of matter with uniform properties.

Metals present in municipal wastewater may still be present in treated sewage sludge; ______

Answers

Metals present in municipal waste water may still be present in treated sewage sludge IN CONCENTRATIONS THAT MAY AFFECT THE PUBLIC HEALTH. Sewage sludge is an end product of municipal waste water treatment and it contains many of the pollutant that are removed from the waste water. 

What change shows a tenfold increase in concentration of h+ ions?

Answers

Your answer would be: pH2 --> pH1

goodluck, :-)

What type of graph or chart would be best for showing the relationship between bird wing length and average flight distance

Answers

scatterplot, it shows any possible relationships that you can calculate through statistics of need be

What is the mass percent of nitrogen in lead (ii) nitrate (pb(no3)2)?

Answers

Final answer:

The mass percent of nitrogen in lead (II) nitrate (Pb(NO3)2) is calculated by dividing the total mass of nitrogen by the molecular mass of lead (II) nitrate and multiplying by 100%, which is approximately 8.46%.

Explanation:

To determine the mass percent of nitrogen in lead (II) nitrate (Pb(NO3)2), you need to find the total mass of nitrogen in the compound and divide it by the molecular mass of lead (II) nitrate. The molar mass of lead (II) nitrate is the sum of the mass of one lead atom, two nitrogen atoms, and six oxygen atoms. Thus, the molar mass of Pb(NO3)2 is 207.2 (mass of Pb) + 2(14.007) (mass of N) + 6(15.999) (mass of O) = 331.209 g/mol. The total mass of nitrogen is 2 × 14.007 g/mol = 28.014 g/mol.

To find the mass percent, we use the formula:

Mass percent of N = (Total mass of N / Molar mass of Pb(NO3)2) × 100%

Mass percent of N = (28.014 g/mol / 331.209 g/mol) × 100% ≈ 8.46%

? Which statement about nuclear binding energy is true? It is the attraction of the positive nucleus to negative electrons. It must be overcome to break a nucleus apart into protons and neutrons. It is the energy that holds atoms together in a molecule. It is created when particles drift far apart.

Answers

I think the correct answer would be the second option. Nuclear binding energy is the amount of energy that must be overcome to break a nucleus apart into protons and neutrons. The protons and neutrons are called the nucleons. We can calculate this value from the product of the mass defect and the square of the speed of light which is commonly known as Einstein's special-relativity equation, E = mc^2. This energy is a result of the effect of the two forces known as the strong nuclear forces which binds the nucleons and the electromagnetic force of the positively charged protons.

Answer:

B

Explanation:

i just had the quiz for plato, the guy above is correct too, so brainliest to him

What isotope has 13 protons and 14 neutrons? enter the name of the element followed by a hyphen and the mass number (e.g., uranium-234)?

Answers

13 protons = Aluminum

13+14 = 27

Aluminum-27

During a lab, you heat 1.62 g of a CoCl2 hydrate over a Bunsen burner. After heating, the final mass of the dehydrated compound is 0.88 g. Determine the formula of the hydrate and also give the full name of the hydrate. Please show all your work for the calculations for full credit.

Answers

Let the number of moles of water in the required formula be "y".
The final formula should be in the form of : CoCl2 yH2O
1.62 g is the weight of CoCl2 and water in the sample
After heating, the remaining mass represents  the mass the salt only
mass of water in sample = 1.62 - 0.88 = 0.74 g

From the periodic table:
molar mass of cobalt is 59 g
molar mass of chlorine is 35.5
molar mass of hydrogen is 1
molar mass of oxygen is 16

molar mass of formula = 59 + 2(35.5) + 18y = 130 + 18y g
Now we have calculate the mass/molar mass for each part of the formula (salt and water) and equate them to get number of moles of water as follows:
0.88 / 130 = 0.74 / y18 
y = 6.07 which is approximately 6 moles

Thus, the final formula is CoCl2 6H2O. This hydrate is called cobalt(II)chloride hexahydrate.

After heating a CoCl₂ hydrate to remove water, the formula is determined using the mass of water lost and the molar masses of CoCl₂ and H₂O. The calculations show that every mole of CoCl₂ is associated with 6 moles of H₂O, giving the hydrate a formula of CoCl₂•6H₂O, known as cobalt(II) chloride hexahydrate.

To determine the formula of the hydrate of cobalt(II) chloride (CoCl₂ hydrate), you first need to calculate the mass of water lost during heating. The initial mass of the hydrate was 1.62 g and the mass after heating was 0.88 g. The mass of the water is therefore the difference between these two masses.

Mass of water lost = Initial mass \'96 Final mass = 1.62 g \'96 0.88 g = 0.74 g

Next, calculate the number of moles of CoCl₂ and H₂O. The molar mass of anhydrous CoCl₂ is 129.84 g/mol.

Moles of CoCl₂ = Mass of anhydrous CoCl₂ / Molar mass of CoCl₂ = 0.88 g / 129.84 g/mol = 0.006776 moles of CoCl₂

The molar mass of H₂O is approximately 18.015 g/mol.

Moles of H2O = Mass of water / Molar mass of H₂O = 0.74 g / 18.015 g/mol = 0.04107 moles of H₂O

To find the ratio of CoCl₂ to H₂O in the hydrate, divide the moles of water by the moles of CoCl₂.

Ratio = Moles of H₂O / Moles of CoCl₂ = 0.04107 / 0.006776 = 6.06, which rounds to 6.

The formula of the hydrate is CoCl₂•6H₂O. The full name of the hydrate is cobalt(II) chloride hexahydrate.

Friction is not related to the efficiency of a machine.

True
False

Answers

false,the efficiency of a machine indicates how well its input energy is conveyed.
the efficiency of a machine is the ratio of its output to its input. 


Solid barium sulfate dissolves into its respective ions at 25°C. Suppose that in a particular solution, [Ba2+ ] = 1.76 x 10-3 M. Find the value of Ksp.

Answers

BaSO₄(s) ⇄ Ba²⁺(aq) + SO₄²⁻(aq)

Ksp=[Ba²⁺][SO₄²⁻]

[Ba²⁺]=[SO₄²⁻]

Ksp=[Ba²⁺]²

Ksp=(1.76*10⁻³)² =3.0976×10⁻⁶ ≈3.1×10⁻⁶

Answer:

The value of solubility product of barium sulfate is [tex] 3.09\times 10^{-6}[/tex].

Explanation:

[tex]BaSO_4\rightarrow Ba^{2+}+SO_4^{2-}[/tex]

                         S         S

1 mole of barium sulfate dissociates into 1 mole of barium ion and one mole sulfate ion.

So, [tex][Ba^{2+}]=[SO_4^{2-}]=S[/tex]

[tex][Ba^{2+}]=S=1.76\times 10^{-3} M[/tex]

The solubility product the barium sulfate will be given by:

[tex]K_{sp}=S\times S=S^2[/tex]

[tex]K_{sp}= (1.76\times 10^{-3})^2=3.09\times 10^{-6}[/tex]

The value of solubility product of barium sulfate is [tex] 3.09\times 10^{-6}[/tex].

Sodium hydroxide reacts with carbon dioxide as follows: which is the limiting reactant when 1.85 mol naoh and 1.00 mol co2 are allowed to react? how many moles of na2co3 can be produced? how many moles of the excess reactant remain after the completion of the reaction?

Answers

First,let's illustrate the problem into chemical formulas in a complete balanced reaction.

2NaOH + CO2  ⇒ Na2CO3 + H2O

To abide with the Law of Conservation of Mass, we balance the equation. We use these stoichiometric coefficients to determine the yield and which is the limiting reactant. Let's take 1.85 mol of NaOH. How many moles CO2 does it take to completely react NaOH?

1.85 mol NaOH * (1 mol CO2/ 2 mol NaOH) = 0.925 mol CO2

Since you have 1.00 mol CO2 present, it is still enough to completely react 1.85 mol NaOH. Therefore, CO2 is the excess reactant and NaOH is the limiting reactant. We base our calculations on the limiting reactant from here.

Next, how many moles of Na2CO3 are produced?

1.85 mol NaOH * (1 mol Na2CO3/2 mol NaOH) = 0.925 mol Na2CO3

Lastly, the amount of the excess reactant would be 1.00 mol CO2 - 0.925 mol CO2 (needed to react 1.85 mol NaOH) = 0.075 mol CO2 excess
Final answer:

The limiting reactant in the reaction is NaOH, 0.925 moles of Na2CO3 can be produced, and there would be 0.075 moles of CO2 remaining after the reaction is complete.

Explanation:

The given balanced reaction is: 2NaOH(aq) + CO2(aq) → Na2CO3(aq) + H2O(1). Firstly, let's identify the limiting reactant. For every mole of CO2, two moles of NaOH are required. Therefore, 1.85 moles of NaOH would react completely with 0.925 moles of CO2. But since we have 1.00 mol of CO2, our limiting reactant is NaOH.

Since the reaction produces 1 mole of Na2CO3 for every 2 moles of NaOH, we can expect to produce 0.925 moles of Na2CO3 based on the amount of our limiting reactant.

Finally, to determine the remaining amount of the excess reactant after the completion of the reaction, we subtract the amount of CO2 that reacted (0.925 moles) from the initial amount (1.00 mol), which gives us 0.075 moles of CO2 remaining.

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What are the substances that interact to form new substances in a chemical reaction called?

Answers

reactants/reagents, the terms are interchangeable :)

Answer:

Reactants or Products?

The answer is reactants.

Reactants Definition- A reactant is the chemical substances present at the start of a chemical reaction.

A products definition is the substance produced in a chemical reaction.

The answer is reactants because they start at the beginning of a chemical reaction, and have to interact with other substances to make a product. product is not able to interact with new substances, nor make new substances. Therefore, in a chemical reaction, if you want the substances to interact, and form new substances, it has to be a reactant.

A way to remember this is think of it as if  you are a reactant and you are interacting to form new substances.

How many moles of hydrogen gas (h2) would be produced from the reaction of 0.30 moles of water (h2o) and excess sodium? (na)?

Answers

2Na + 2H₂O → 2NaOH + H₂

2 mol H₂O - 1 mol H₂
0.30 mol H₂O - x mol H₂

x=0.30*1/2= 0.15 mol
Final answer:

When 0.30 moles of water react with excess sodium, 0.15 moles of hydrogen gas are produced, judged by the 2:1 molar ratio between water and hydrogen in the reaction.

Explanation:

The reaction between water (H2O) and sodium (Na) produces sodium hydroxide (NaOH) and hydrogen gas (H2). The balanced chemical equation for this reaction is: 2Na + 2H2O -> 2NaOH + H2.

In this reaction, it's clear that the molar ratio between water and hydrogen gas is 2:1. That means, for every two moles of water consumed in the reaction, one mole of hydrogen gas is produced. If only 0.30 moles of water is reacted, then 0.30 / 2 = 0.15 moles of hydrogen gas would be produced.

So, in the reaction of 0.30 moles of water and excess sodium, 0.15 moles of hydrogen gas would be produced.

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