The attraction of water molecules to one another is known as:

Surface tension
Cohesion
Capillary action
Adhesion

Answers

Answer 1
Cohesion is the answer to this question
Answer 2
i think the answer is cohesion 

Related Questions

Heterogeneous mixture are often separated by

Answers

The answer is Filtration

Hope this helps

Final answer:

Heterogeneous mixtures can be separated by physical means such as filtration, which removes solids from liquids, or distillation, which separates components based on boiling points. Chromatography is another method used for separating complex mixtures like inks based on differential adsorption.

Explanation:

Heterogeneous mixtures are characterized by a non-uniform composition and can often be separated by simple physical means. One common method of separation is filtration, which uses a barrier to separate solid particles from a liquid. For instance, sand in water can be separated by passing the mixture through filter paper, which allows water to pass through while retaining the sand particles.

Another separation technique is called distillation, which relies on the differences in boiling points of substances to separate a homogeneous mixture into its components. For example, when distilling a saltwater solution, the water, being more volatile, evaporates first and is collected after condensation, leaving the salt behind.

Moreover, chromatography is a technique used to separate mixtures based on the differential adsorption of compounds to a medium. It is often employed to separate complex mixtures such as inks, where different ink components travel at various speeds through a medium, resulting in separation.

In the gaseous state, chlorine exists as a diatomic molecule Cl2 (Molar mass = 70.9 g/mol).Calculate the number of moles of chlorine present in 140 g of chlorine gas.

Answers

1 mole = 70.9
X mole = 140
X=1.9746 moles
X= 1.98 when rounded to 3 significant figures.

Answer : The moles of chlorine present in 140 grams of chlorine gas are 3.96 moles.

Explanation : Given,

Mass of [tex]Cl_2[/tex] = 140 g

Molar mass of [tex]Cl_2[/tex] = 70.9 g/mol

Formula used :

[tex]\text{Moles of }Cl_2=\frac{\text{Mass of }Cl_2}{\text{Molar mass of }Cl_2}[/tex]

Now put all the given values in this formula, we get:

[tex]\text{Moles of }Cl_2=\frac{140g}{70.9g/mol}[/tex]

[tex]\text{Moles of }Cl_2=1.98mol[/tex]

The number of moles of chlorine in [tex]Cl_2[/tex] = 2 × 1.98 = 3.96 mole

Therefore, the moles of chlorine present in 140 grams of chlorine gas are 3.96 moles.

What is the role of partially decayed plant and animal remains in a soil?

Answers

Plants used the decaying plants and animals as nutrients which helps them grow. 
Decayed plant and animal remains provide nutrients to the soil to help plants grow hope this helps

Calculate the grams of product in parentheses that would be produced. (albr3)

Answers

We are converting aluminum bromide, a chemical, to grams. The mole is the fundamental unit of the substance. Albr3 would therefore weigh 266.693538 grams.

What is parentheses?

The statement is explained or further information is included in the sentence by using parentheses.

The two punctuation marks known as parentheses are most frequently employed to insert extraneous information or an aside into a phrase. The parentheses seem like two vertical curved lines.

A phrase, word, or sentence added to writing as supplemental information or an afterthought is known as a parenthesis. It is emphasized with bracketed text, commas, or dashes. He had been a fan of Rockingham Rovers since he was five years old, as an illustration.

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study the electron dot diagrams in figure 1 above. which two elements are most likely to react and form a compound what type of compound are they likely to form

Answers

there’s no picture? regardless, if there are two numbers of electrons adding up to 8, then they will likely form an ionic bond/compound. if they can form a covalent bond with whatever amount of electrons, ex carbon 4 and 4, then it would b covalent compound

Considering the attached image;

Answer;

- Lithium (Li) and Flourine (F)

Explanation;

-(Li) Lithium and (F) Fluorine would create a binary ionic compound which would be lithium fluoride which would be (LiF). Lithium is an alkali metal in group 1 in the periodic table , while flourine is a halogen in group 7. Lithium reacts by loosing an electron while flourine reacts by gaining one electron. Therefore, they reacts forming LiF which is an ionic compound.

-They would create an ionic compound because lithium is a metal and fluorine is a nonmetal. Metal + Nonmetal = ionic compound.


What's the formula equation for the reaction that occurred between the barium chloride solution , BaCl2 (aq), and the sodium sulfate solution, Na2SO4(aq).

Answers

The balanced equation is:

BaCl2 (aq) + Na2SO4 (aq) ----> BaSO4(s)+ 2 NaCl(aq)

This is a double replacement reaction.

The reactants are:

a) BaCl2: barium chloride, a ionic compound, therefore soluble in water,

b) Na2SO4: sodium sulfate, another ionic compound, therefore also soluble in water.

The products are:

c) BaSO4: barium sulfate, a solid not soluble in water which precipitates.

d) NaCl: sodium chloride, an ionic compound, therefore soluble in water.

If the mass of a particular atom is exactly 5 times the mass of an atom of carbon-12, what is its mass

Answers

The mass would be 60 grams.
The answer would be 
60 grams

What mass of hcl in grams is required to react with 0.750 g of al(oh)3?

Answers

The mass would be 53

What problems might arise if a hot solution is filtered by vacuum filtration?

Answers

Filter paper may prematurely clog, glassware could crack, volatile components may be lost, and vapor release can occur if a hot solution is vacuum filtered.

If a hot solution is filtered by vacuum filtration, several problems might arise:

1. Glassware Damage: The sudden temperature change when hot solution comes into contact with cold filtration equipment can cause glassware to crack or shatter, leading to potential injuries and loss of materials.

2. Reduced Filtration Efficiency: Hot solutions can cool rapidly during filtration, causing the solute to crystallize or solidify before the filtration is complete. This can lead to clogged filter paper or reduced filtration efficiency.

3. Loss of Volatile Components: Some volatile components in the hot solution may evaporate during vacuum filtration, altering the composition of the filtrate and potentially leading to inaccurate results.

4. Vapor Release: The application of vacuum pressure to a hot solution can lead to the rapid release of vapor, which can be hazardous if not properly managed, posing a risk of burns or exposure to harmful substances.

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Final answer:

Problems that may arise from filtering a hot solution via vacuum filtration include rapid vaporization, potential damage to the filtration equipment, altered interactions between the solution and the filter, inefficient filtration, and potential negative effects on heat-sensitive components of the solution.

Explanation:

If a hot solution is filtered by vacuum filtration, several problems could arise. One issue is that the increased temperature might result in rapid vaporization, causing the solution to bump and lead to an incomplete or inefficient filtration. Another problem could be the conductivity of heat from the hot solution could damage the filtration setup. For example, materials such as the membrane filters and flasks used in filtration may not withstand high temperatures, causing them to crack or break.

Furthermore, heat can modify the interactions between the solution and the membrane filter. The reduced viscosity might speed up the flow through the filter, which can lead to a drastic decrease in filtration efficiency, and making it hard to separate the desired products. Also, depending on the nature of the substance being filtered, a hot solution could impact negatively its heat-sensitive components, rendering the filtered solution unfit for the intended purpose. Therefore, it’s best to allow a hot solution to cool before vacuum filtration, except the membrane filters are designed to handle such conditions.

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Problem 9.4 the molecule shown here is difluoromethane (ch2f2), which is used as a refrigerant called r-32. a carbon is single bonded left and right, angled above, to f, and below, angled in and out of the page , to h. part a based on the structure, how many electron domains surround the c atom in this molecule? express your answer as an integer.

Answers

Final answer:

The carbon atom in difluoromethane (CH2F2), referred to as R-32, is surrounded by four electron domains, corresponding to its four bonds - two to hydrogen atoms and two to fluorine atoms.

Explanation:

In the molecule difluoromethane (CH2F2), there are four single bonds around the central carbon atom, namely, two to hydrogen atoms and two to fluorine atoms. Each of these bonds is considered an electron domain. Therefore, there are four electron domains around the carbon atom in this molecule.

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Sodium (Na) and potassium (K) are in the same group in the periodic table. Sodium is in the 11th position. How many valence electrons does potassium have?



0



1



9



11

Answers

It's 1 because there is only one electron on the outer shell.

Answer: Option (b) is the correct answer.

Explanation:

As it is known that both sodium and potassium are same group elements. Both of then belongs to group 1A.

Since, sodium is at 11th position in the periodic table and its atomic number is also 11. Therefore, electronic distribution of sodium is 2, 8, 1.

Similarly, potassium is placed at 19th position in the periodic table and its atomic number is 19. So, electronic distribution of potassium is 2, 8, 8, 1.

It is known that valence electrons are the electrons present in the outermost shell of an atom.

So, in a potassium atom there is only one valence electron is present.

Thus, we can conclude that potassium have 1 valence electron.

If you start with 89.3 g no(g) and 28.6 g h2(g), find the theoretical yield of ammonia.

Answers

50.7 g. First, lookup the atomic weights of all the involved elements. Atomic weight nitrogen = 14.0067 Atomic weight hydrogen = 1.00794 Atomic weight oxygen = 15.999 Now calculate the molar masses Molar mass NO = 14.0067 + 15.999 = 30.0057 g/mol Molar mass H2 = 2 * 1.00794 = 2.01588 g/mol Molar mass NH3 = 14.0067 + 3 * 1.00794 = 17.03052 g/mol Calculate how many moles of each reactant we have: Moles NO = 89.3 g / 30.0057 g/mol = 2.9761 mol Moles H2 = 28.6 g / 2.01588 g/mol = 14.1874 mol The balanced equation for the reaction is 2NO + 5H2 ==> 2NH3 + 2H2O Let's see what the limiting reactant is. Assuming NO is limit. 2.9761 mol / 2 * 5 = 7.44 mol So 2.9761 moles of NO will need 7.44 moles of hydrogen gas which is less than the amount of hydrogen we have. So NO is our limiting reactant. And since 2 moles of NO produces 2 moles of NH3, we will get the same number of moles of NH3 as moles of NO we have, so we'll have 2.9761 moles of NH3. To find the mass, just multiply by the molar mass. So 2.9761 mol * 17.03052 g/mol = 50.68453057 g Rounding to 3 significant figures gives 50.7 g.
Balanced equation: 
2 NO + 5 H2 ------> 2 NH3 + 2 H2O
 
2 moles NO react with 5 moles H2 to produce 2 moles NH3
 
Molar mass of NO = 30.00 g/mol 
86.3g NO = 86.3/30.00 = 2.877 moles of NO 

This will require: 2.877*5 / 2 = 7.192 moles of H2 

Molar mass of H2 = 2 g/mol 
25.6g H2 = 25.6/2 = 12.7 mol H2. 
You have excess H2 means the NO is limiting 

From the balanced equation: 
2 moles of NO will produce 2 moles of NH3 
2.877 moles of NO will produce 2.877 moles of NH3 

Molar mass NH3 = 17g/mol 
Mass NH3 produced = 2.877 * 17 = 48.91g 

Hence the yield is = 48.91 g ~ 49 g

A car driver accelerates to a speed of 35 mph and then takes her foot off the gas pedal. Even though she does not press the brake pedal at any time, she eventually rolls to a stop. Which of the following most likely causes the car to come to a stop?

Answers

The list of options to answer this question is:

A.kinectic energy is transformed into thermal energy.

B.electrical energy is transformed into potential energy.

C.potential energy is transformed into kinectic energy.

D.mechanical energy is transformed into chemical energy.

The answer is the option A. A.kinectic energy is transformed into thermal energy.

As you know energy cannot be lost but transformed.

When friction force acts over the tyres it increases the speed of the particles in the tyres which is thermal energy, this thermal energy increase comes from kinetic energy loss.

What is a substance?
A. a uniform mixture that can’t be separated
B. a mixture that can be separated
C. a single component that can’t be separated
D. a single component that can be separated

Answers

A. Because it is a particular kind of matter with uniform properties.

Answer : The correct option is, (C) a single component that can’t be separated.

Explanation :

Substance : It is the pure form of matter or we can say that it is a matter that contains only one type of molecule of atom. It can not be separated by physical process.

For example : Water is a substance.

Mixture : It is a combination of different type of atoms or molecules and it is an impure form.

For example : Sodium chloride with water is a mixture.

Hence, the correct option is, (C) a single component that can’t be separated.

Which type of orbitals overlap to form the sigma bond between c and cl in ch3cl?

Answers

Final answer:

In the molecule CH3Cl, the sigma bond between Carbon and Chlorine is formed by the overlap of an s orbital from Carbon and a p orbital from Chlorine.

Explanation:

The type of orbitals that overlap to form the sigma bond between Carbon (C) and Chlorine (Cl) in CH3Cl are an s orbital from Carbon and a p orbital from Chlorine. This overlap can occur as the Carbon has its electronic configuration ending in 2s2 2p2, meaning it has access to one s orbital and three p orbitals. Chlorine, on the other hand, has its electronic configuration ending in 3s2 3p5, meaning it has a partially filled p orbital. This overlap produces a sigma bond, a covalent bond in which the electron density is concentrated in the region along the internuclear axis.

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the force of attraction that holds two atoms together is called a "chemical bond". True or false? if false, what is the right answer?

In the "periodic table", dots around an element's symbol indicate the number of valence electrons in an atom. True or false? if false, what is the right answer?

Answers

Final answer:

The force of attraction that holds two atoms together is called a "chemical bond". True.

In the periodic table, dots around an element's symbol indicate the number of valence electrons in an atom. True.

Explanation:

True or false? The force of attraction that holds two atoms together is called a "chemical bond".

The correct answer is true. Chemical bond is the term used to describe the attractive force between atoms that holds them together in a molecule or compound. This force can be either ionic, where one atom transfers electrons to another, or covalent, where atoms share electrons.

True or false? In the periodic table, dots around an element's symbol indicate the number of valence electrons in an atom.

The correct answer is true. The dots, also known as electron dot diagrams or Lewis dot structures, represent the valence electrons of an atom. Valence electrons are the electrons in the outermost energy level of an atom and are responsible for the atom's chemical behavior and reactivity.

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Final answer:

A chemical bond is formed through the sharing or transfer of electrons between atoms. The dots around an element's symbol in the periodic table indicate the number of valence electrons in an atom.

Explanation:

The force of attraction that holds two atoms together is indeed called a chemical bond. This bond is formed through the sharing or transfer of electrons between atoms. When atoms share electrons, it is called a covalent bond, while when electrons are transferred, it forms an ionic bond.

In the periodic table, the dots around an element's symbol, known as the valence electrons, indicate the number of electrons in the outermost energy level of an atom. These electrons are involved in the formation of chemical bonds. The number of valence electrons determines the reactivity and chemical properties of an element.

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For which type of titration will the ph be neutral at the equivalence point?

Answers

At the equivalence point, equal amounts of H+ and OH- ions will combine to form H2O, resulting in a pH of 7.0 (neutral). The pH at the equivalence point for this titration will always be 7.0, note that this is true only for titrations of strong acid with a strong base.

The pH is neutral at the equivalence point during the titration of a strong acid with a strong base, resulting in a pH of 7.0.

The pH will be neutral at the equivalence point for a titration involving a strong acid and a strong base. At the equivalence point in such a titration, equimolar amounts of acid and base have been mixed, resulting in the formation of a salt and water, without excess hydronium (H+) or hydroxide (OH-) ions, which leads to a neutral pH of 7.0. The indicator chosen for this titration should change color at a pH of 7.0 to signify the end point.

For titrations involving a weak acid or weak base, the pH at the equivalence point is not neutral. In these cases, the resulting salt can affect the pH, either making the solution slightly acidic or basic. Therefore, the pH at the equivalence point for such titrations depends on the specific acid and base being used.

Both sublimation and ———— occur only on the surface of a substance.

Answers

Both sublimation and evaporation occur only on the surface of a substance. 

Good luck.

How will the gravitational force between the moon and a spacecraft change as the spacecraft nears the moon? A. It will increase. B. It will decrease. C. It will remain the same. D. It will repel the spacecraft.

Answers

I think it might be a

Answer:

the answer is a

Explanation:

can i pls get brainliest

Part
b.1. write a net ionic equation for the reaction of hydrochloric acid with sodium hydroxide.

Answers

NaOH (aq) + HCl(aq) => NaCl(aq)+ H2O(l)

Na+(aq)+ OH - (aq) + H +(aq) +Cl - (aq) + Cl- (aq)
=> Na+(aq) + Cl - (aq) + H2O(l)
H+(aq) + OH-(aq) => H2O(l)

The net ionic equation for the reaction of hydrochloric acid with sodium hydroxide is H⁺(aq) + OH⁻(aq) → H₂O(l), which shows the formation of water from hydrogen and hydroxide ions, ignoring the spectator ions sodium and chloride.

The net ionic equation for the reaction of hydrochloric acid with sodium hydroxide is as follows:

H⁺(aq) + OH⁻(aq) → H₂O(l)

In this equation, hydrochloric acid (HCl) dissociates into hydrogen ions (H⁺) and chloride ions (Cl⁻) when dissolved in water. Sodium hydroxide (NaOH) dissociates into sodium ions (Na⁺) and hydroxide ions (OH⁻).

The reaction between the hydrogen ions and hydroxide ions produces water (H₂O), and this is the net ionic equation for the reaction. Sodium (Na⁺) and chloride (Cl⁻) ions are present on both sides of the equation and they do not participate in the actual chemical change, so they are considered spectator ions and are not included in the net ionic equation.

A compound composed of sulfur and fluorine is found to contain 62.79% by mass of sulfur. if the approximate molar mass of this compound is 102.13 g/mol, what is its molecular formula?

Answers

Let our basis for answering this item be 1 mol of the given substance. Then, we calculate for the equivalent mass by multiplying the number of moles with the molar mass.
                  mass = (102.13 g/mol)(1 mol) = 102.13 g of substance

Then, we calculate for the amount of sulfur and fluorine each using the percentage given.
     sulfur = (0.6279)(102.13 g) = 64.13 g of sulfur
     fluorine = (1 - 0.6279)(102.13 g) = 38 g of fluorine

Then, calculate for the number of moles of the sulfur and fluorine by dividing the calculated mass by the molar mass of each.
     moles of sulfur = (64.13 g)(1 mol/32 g) = 2 mols suflur
     moles of fluorine = (38 g)(1 mol/19 g) = 2 mols fluorine

The molecular formula of the substance is S₂F₂. 

ANSWER: S₂F₂

The molecular formula of the compound of sulfur and fluorine is [tex]\boxed{{{\text{S}}_2}{{\text{F}}_2}}[/tex].

Further Explanation:

Empirical formula:

It is atom’s simplest positive integer ratio in compound. It may or may not be the same as that of molecular formula. For example, empirical formula of disulfur dioxide is [tex]{\text{SO}}[/tex].

Molecular formula:

It is chemical formula that indicates the total number and kinds of atoms in molecule. For example, molecular formula of disulfur dioxide is [tex]{{\text{S}}_2}{{\text{O}}_2}[/tex]

Step 1: Mass of sulfur (S) and fluorine (F) is to be calculated. This is done by using equation (1).

Since the given compound contains only sulfur and fluorine. So the mass of sulfur is calculated as follows:

[tex]{\text{Mass of sulfur}}\left( {\text{S}} \right) = {\text{Mass of compound}} \times {\text{percentage of Sulfur}}[/tex]      ......(1)

The mass of the compound is 102.13 g/mol.

The percentage of sulfur is 62.79 %.

Substitute the values in equation (1).

[tex]\begin{aligned}{\text{Mass of sulfur}}\left( {\text{S}} \right) &= 102.13{\text{ g/mol}} \times 62.79{\text{ }}\%\\&= 102.13{\text{ g/mol}} \times \frac{{62.79}}{{100}}\\&= 64.13{\text{ g/mol}}\\\end{aligned}[/tex]

The mass offluorine (F) is calculated as follows:

[tex]{\text{Mass of fluorine}}\left( {\text{F}} \right) = {\text{Mass of compound}} - {\text{Mass of sulfur}}\left( {\text{S}} \right)[/tex]   ......(2)

Substitute 102.13 g/mol for mass of the compound and 64.13 g/mol for mass of sulfur in equation (2).

[tex]\begin{aligned}{\text{Mass of fluorine}}\left({\text{F}} \right) &= {\text{102}}{\text{.13 g/mol}} - {\text{64}}{\text{.13 g/mol}}\\&= 38{\text{ g/mol}}\\\end{aligned}[/tex]

Step 2: The number of sulfur (S) and fluorine (F) in the compound is to be calculated.

The formula to calculate the number of sulfur (S)atoms in the molecule is as follows:

[tex]{\text{Number of S}} = \dfrac{{{\text{Given mass of S}}}}{{{\text{Molar mass of S}}}}[/tex]                              ......(3)

The given mass of S is 64.13 g/mol.

The molar mass of S is 32 g/mol.

Substitute these values in equation (3).

[tex]\begin{aligned}{\text{Number of S}} &= \frac{{{\text{64}}{\text{.13 g/mol}}}}{{{\text{32 g/mol}}}} \\&\approx 2\\\end{aligned}[/tex]

The formula to calculate the number of fluorine (F) atoms in the molecule is as follows:

[tex]{\text{Number of F}} = \dfrac{{{\text{Given mass of F}}}}{{{\text{Molar mass of F}}}}[/tex]                      ......(4)

The given mass of F is 38 g/mol.

The molar mass of F is 19 g/mol.

Substitute these values in equation (4).

[tex]\begin{aligned}{\text{Number of F}} &= \frac{{{\text{38 g/mol}}}}{{{\text{19 g/mol}}}}\\&= 2\\\end{aligned}[/tex]

Hence the molecular formula of the given compound is [tex]{{\mathbf{S}}_{\mathbf{2}}}{{\mathbf{F}}_{\mathbf{2}}}[/tex].

Learn more:

1. Calculate the moles of ions in the solution: https://brainly.com/question/5950133

2. Calculate the moles of chlorine in 8 moles of carbon tetrachloride: https://brainly.com/question/3064603

Answer details:

Grade: Senior School

Subject: Chemistry

Chapter: Stoichiometry of formulas and equations

Keywords: empirical formula, S, F, SF, S2F2, subscript, moles of F, moles of S, mass of S, mass of F and molecular formula.

A neutral atom possesses an atomic number of 15 and an atomic mass of 31. Three electrons are gained. What is the result of this conservation? 15 POINTS FOR WHO EVER ANSWERS THIS PLS HELP
A) a positively charged ion.
B) a negatively charged ion.
C) a new isotope of the element.
D) a new isomer of the element .

Answers

There is one piece of relevant information in this question:  The atom is in a neutral state.  Because electrons have a -1 negative charge we see that the atom will go from being neutral to having a charge of -3.  It will become a negatively charged ion.  It cannot be an isomer because only molecules can have isomers; it isn't an isotope because an isotope merely has a different number of neutrons.

Answer:

B

Explanation: If it has a positive trait it will have more energy or more etc.  

Calculate the molarity of 80.0 ml of a solution that is 0.92 % by mass nacl. assume the density of the solution is the same as pure water.

Answers

We are given the volume of the solution which is 80 mL or 0.08 L and the density which is equal to water, density = 1 kg / L.  Therefore calculate total mass:

total mass = (1 kg / L) * (0.08 L) = 0.08 kg = 80 g

 

So the mass of NaCl is:

mass NaCl = 0.0092 * 80 g = 0.736 g

The molar mass of NaCl is 58.44 g/mol, so the number of moles is:

moles NaCl = 0.736 g / (58.44 g/mol) = 0.0126 mol

 

SO the molarity is mol / L:

Molarity = 0.0126 mol / 0.08 L = 0.157 mol/L = 0.157 M

Final answer:

To calculate the molarity of the solution, convert the mass of NaCl to moles, determine the number of moles of ions, and calculate the molality.

Explanation:

To calculate the molarity of the solution, we need to first convert the mass of NaCl to moles using its molar mass. Then, we determine the number of moles of ions present in the solution. Finally, we use the number of moles of ions and the mass of solvent to calculate the molality of the solution. In this case, the molarity of the solution is 1.2 M.

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Write an equation that shows the formation of a aluminum ion from a neutral aluminum atom.

Answers

Final answer:

An aluminum ion, Al³+, is formed from a neutral aluminum atom by losing three electrons.

Explanation:

An aluminum ion, Al³+, is formed from a neutral aluminum atom by losing three electrons. The atomic number of aluminum is 13, so it has 13 protons. When it loses three electrons, it becomes a cation with a positive charge of 3+. The equation for the formation of an aluminum ion is:

Al → Al³+ + 3e-

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Which isotope has 8 neutrons and can be used for metabolic studies and to date archeological artifacts?


A. carbon-13
B. carbon-14

Answers

the answer is B. carbon-14

Two of the types of infrared light, IR-B and IR-A, are both components of sunlight. Their wavelengths range from 1400 to 3000 nm for IR-B and from 700 to 1400 nm for IR-A. Compare the energy of microwaves, IR-B, and IR-A.

Answers

To compare the energy of microwaves, IR-B, and IR-A, we need to compare how long the wavelengths are for each wave. Through the intervals given, we can determine that we in order from greatest to least energy, the order is IR-A, IR-B, microwaves.

In terms of energy, microwaves have the lowest energy, followed by IR-B, and with IR-A having the highest energy.

Compare the energy of microwaves, IR-B, and IR-A.

The energy of electromagnetic radiation is inversely proportional to its wavelength. In other words, shorter wavelengths have higher energy, and longer wavelengths have lower energy. Let's compare the energy of microwaves, IR-B, and IR-A:

1. Microwaves have longer wavelengths compared to both IR-B and IR-A. Their wavelengths typically range from 1 mm to 1 m. Microwaves have lower energy compared to both IR-B and IR-A.

2. IR-B falls in the range of 1400 to 3000 nm (1.4 to 3.0 micrometers). It has shorter wavelengths compared to microwaves but longer wavelengths than IR-A. Therefore, IR-B has higher energy than microwaves but lower energy than IR-A.

3. IR-A falls in the range of 700 to 1400 nm (0.7 to 1.4 micrometers). It has shorter wavelengths compared to both microwaves and IR-B. As a result, IR-A has the highest energy among the three – higher than microwaves and IR-B.

So, in terms of energy, the order is:

IR-A > IR-B > Microwaves

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Calculate the volume occupied by 56.5 g of argon gas at STP

Answers

molar mass of argon = 39.95 grams
number of moles of Argon = mass / molar mass 
number of moles of Argon = 56.5 / 39.95 = 1.414 moles

At STP, one mole of gas occupies 22.4 liters. To know the volume that 1.414 moles occupy, all you have to do is cross multiplication as follows:
volume = (1.414*22.4) / 1 = 31.679 liters
31.7 liters if using the pre 1982 definition of STP. 32.1 liters if using the post 1981 definition of STP. First, determine how many moles of argon you have by dividing the mass you have by the atomic weight of argon. So 56.5 g / 39.948 g/mol = 1.41433864 mol Second, determine what definition of STP you're using. the definition prior to 1982 of STP was 0°C with a pressure of 1 atmosphere (1.01325 X 10^5 Pascals). The definition for 1982 and later is 0°C with a pressure of 1 X 10^5 Pascals. There are still quite a few textbooks that use the older definition of STP so I'll be giving the results for both the old and new definitions of STP. To calculate the volume of an ideal gas, just multiply the number of moles by a constant. That constant is 22.710980 liters/mol for the 1982 and later standard and 22.414 liters/mol for the pre 1982 standard. So Pre 1982 1.414339 * 22.414 = 31.70098628 liters = 31.7 liters post 1981 1.414339 * 22.71098 = 32.12101657 liters = 32.1 liters

there are two open cans of soda on the table .one can was just taken from the refrigerator and the other was taken from the cupborad ,upon opening the cans ,which one loes carbon dioxide more quickly and why

Answers

I would think its the can taken from the refrigerator.   The carbon dioxide is less soluble in colder water  so more will escape into the air from this can

A 1.00 kg block of ice at 0 °c is added to a picnic cooler. how much heat will the ice remove as its melts to water at 0 °c?

Answers

334000J or 334kJ The heat of fusion for ice is 334 joules per gram. A kilogram is 1000 grams. Calculation is straightforward: 334J*g^-1 * 1000g = 334000J = 334kJ

A cord is used to vertically lower an initially stationary block of mass m kg at a constant downward acceleration of g/4. the block has fallen a distance
d. (use any variable or symbol stated above as necessary.) (a) find the work done by the cord's force on the block. wf = 3mgd 4​ incorrect: your answer is incorrect. (b) find the work done by the weight of the block. wg = (c) find the kinetic energy of the block. k = (d) find the speed of the block. v =

Answers

(a) We know that work is the product of Force and Distance so: (in this case Distance is negative since going down so –d)

work = force * distance

work = M * (g - g/4) * -d

work = -3Mgd/4 

(b) The work by the weight of the block is simply:

work = Mgd 

(c) The kinetic energy is simply equivalent to the net work, therefore:

KE = net work

KE = Mgd/4 

(d) The velocity is:

v = √(2*KE/M)

Plugging in the value of KE from c:

v = √(2*Mgd / 4M)

v = √(gd / 2) 

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