A mixture can be classified as a solution, suspension, or colloid based on ____.
A. The scattering of its particles
B. The size of its particles
C. The color of its particles
D. The total number of its particles

Answers

Answer 1
The answer would be B

Related Questions

Identify water. weak electrolyte, weak acid nonelectrolyte strong electrolyte, strong acid weak electrolyte, strong acid strong electrolyte, weak acid

Answers

water is a weak electrolyte 

Why is benzyl alcohol more soluble in ether than water?

Answers

because the benzyl alchohol is more non-polar than being polar. yes it has OH but has lots of CH3-s and they are nonpolar nonpolarity is stronger so it is soluble in ether rather than in water. in chemistry polar in polar and non-polar to nonpolar is soluble. the water is polar

If an atom has 43 electrons, 50 neutrons, and 43 protons, what is it's approximate atomic mass? what is the name of this element?

Answers

I believe the answer to your question would be Fluorine. I hope I answered your question, my friend. :) 

What are isotopes? how are they different from each other?

Answers

Isotopes are two or more of the same type of element. They are different because they all have a different relative atomic mass.
Final answer:

Isotopes are atoms of the same element with different numbers of neutrons. They have similar chemical properties but differ in their mass numbers. Some isotopes are stable, while others are radioactive.

Explanation:

Isotopes are atoms of the same element with the same number of protons but different number of neutrons. They have similar chemical properties but differ in their mass numbers. For example, carbon has three isotopes: carbon-12, carbon-13, and carbon-14.


The differences in the number of neutrons can affect the stability and radioactive properties of isotopes. Some isotopes are stable and remain unchanged over time, while others are radioactive and undergo decay. Radioactive isotopes are used in various applications such as carbon dating and medical imaging.


Isotopes can be represented by their symbol with the mass number as a superscript on the upper left and atomic number as a subscript on the lower left. For instance, carbon-12 is represented as ^12C.

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Which of the following is usually done last in the scientific method of investigation?

A. Ask a question
B. Test with an experiment
C.Analyze data and draw conclusions
D. Do background research and construct a hypothesis

Answers

C - Analyze data and draw conclusions. After an experiment or in this case; an investigation, you would analyze your data that you collected from the investigation/experiment, and draw conclusions based on your data.

Answer: C. Analyze data and draw conclusions

Explanation:

A scientific method of investigation is a step by step detailed process which involves studying the background and theory associated with the chosen topic of research, observation, forming hypothesis keeping in mind the observation, testing the hypothesis by using experimental procedures, analyzing the data and developing conclusion.  

On the basis of the above description, C is the correct option. The data and conclusion can be drawn after the entire experimental process.

Identify two ways condensation differs from boiling. identify one way they are similar

Answers

Boiling and condensation are different because boiling starts as a liquid and becomes a gas, while condensation does the opposite, gas to liquid.

Similarity: the substance will condensate at the same temperature that the boiling happens. the condensation point and the boiling point are the same temperature. 

what is the mole fraction of h2s in the gas mixture of gases made up of 7.0 g of H2S, 10.0 g of CH4 and 12.0 g of O2

Answers

Final answer:

The mole fraction of H2S in the gas mixture is approximately 0.170, calculated by dividing the moles of H2S by the total moles of all gases in the mixture.

Explanation:

To calculate the mole fraction of H2S in a gas mixture, we first need to find the number of moles of each gas in the mixture. We use the molar mass of each gas to convert the given masses to moles. The molar mass of H2S is approximately 34.08 g/mol, of CH4 is 16.04 g/mol, and of O2 is 32.00 g/mol.

First, let's calculate the moles of each gas:

H2S: moles = 7.0 g / 34.08 g/mol \approx 0.205 molesCH4: moles = 10.0 g / 16.04 g/mol \approx 0.623 molesO2: moles = 12.0 g / 32.00 g/mol \approx 0.375 moles

Next, we sum up the total moles in the mixture:

Total moles = 0.205 + 0.623 + 0.375 = 1.203 moles

Finally, the mole fraction of H2S is calculated by dividing the moles of H2S by the total moles:

Mole fraction of H2S = 0.205 moles / 1.203 moles \approx 0.170

Therefore, the mole fraction of H2S in the mixture is approximately 0.170.

What is the empirical formula of the compound with the molecular formula c18h36?

Answers

when we write a formula of a compound in its simplest form, it is empirical formula.
Given the molecular formula is = C₁₈H₃₆
Now we can relate both empirical and molecular formula as;
Molecular formula = n x empirical formula
C₁₈H₃₆ = 18 x CH₂
So the empirical formula of C₁₈H₃₆ is CH₂

What type of nuclear reaction do thermonuclear weapons rely on? a. fusion c. both fusion and fission b. fission d. None of the above

Answers

Final answer:

Thermonuclear weapons use both fusion and fission reactions. A fission bomb is first used to achieve the high temperatures required for fusion, leading to an extremely powerful explosion measured in kilotons or megatons.

Explanation:

Thermonuclear weapons rely on the type of nuclear reaction known as both fusion and fission. Initially, a fission bomb is detonated to produce the extremely high temperatures necessary for fusion to occur. In essence, the fission reaction is used to ignite the fusion process in these weapons. An example of a thermonuclear bomb is a hydrogen bomb, which contains a fission bomb that, upon explosion, triggers the fusion of hydrogen isotopes, releasing a tremendous amount of energy.

Nuclear fusion requires very high temperatures to initiate, which are typically around 15,000,000 K. In stars, fusion reactions occur naturally, providing the energy that powers these celestial bodies. For thermonuclear weapons, a similar process takes place where the generated heat creates conditions similar to those found at the core of stars, allowing fusion to occur.

These weapons produce a massive number of nuclear reactions in a very short time, with energy yields measured in kilotons or megatons of equivalent conventional explosives. A thermonuclear bomb's explosive power is far greater than conventional explosives, providing both immense thermal output and nuclear radiation.

Convert the following:

Answers

56 cm[tex] ^{3} [/tex] because 1 cm[tex] ^{3} [/tex]=1mL
2200000 mg because 1 kg = 1000 mg
2.2 km because 1000 m = 1km
"Kilo" means 1000.

Most _______ rocks form under conditions found a few kilometers under earths surface
(No choices,fill in the blank)

What are the two main groups of sedimentary rocks?

What are three agents of metamorphism?

Explain the rock cycle by describing how an igneous rock can become a sedimentary rock then a metamorphic rock, and then an igneous rock again.

Answers

Most metamorphic processes takes place few kilometers below the Earth's surface. Thus, "metamorphic rocks" are formed under conditions found few kilometers under the Earth's surface.
Sedimentary rocks are formed by the compaction of sediments. Two main groups of sedimentary rocks are clastic sedimentary rocks and chemical sedimentary rocks.
Metamorphism refers to the changes in the mineral composition of the rocks. The three agents of metamorphism are heat, pressure and water.
The conversion of one form of rock to another is referred as rock cycle. In a rock cycle, an igneous rock formed from the deposition of molten magma can get converted into sedimentary rock when igneous rock breaks down into pieces and sediments. Finally, the any sedimentary rock or igneous rock can undergo metamorphosis to form metamorphic rocks. Metamorphic rock can again form igneous rock by melting of magma followed by crystallization.

Imagine that a chemist is trying to establish whether a piece of rock is from a meteorite that fell from outer space. the rock contains more copper-65 atoms than copper -63 atoms. what can you conclude

Answers

Final answer:

The presence of more copper-65 atoms in the rock suggests that it originated from outer space.

Explanation:

In this case, the chemist can conclude that the rock is likely from a meteorite. The reason is that copper has two isotopes: copper-65 and copper-63. The natural abundance of these isotopes on Earth is such that copper-63 is much more abundant than copper-65. However, meteorites often have a different isotopic ratio, with more copper-65 relative to copper-63. So, the presence of more copper-65 atoms in the rock suggests that it originated from outer space.

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Final answer:

The higher presence of copper-65 atoms compared to copper-63 atoms in the rock could indicate that it is not of terrestrial origin, possibly being a piece of meteorite. Copper isotopes on Earth are more abundant in the form of copper-63, hence the unusual abundance of copper-65 could suggest an extraterrestrial source.

Explanation:

The presence of more copper-65 atoms than copper-63 atoms in a given rock could suggest that it is of extraterrestrial origin. This is primarily deduced from the fact that copper (Cu) on Earth has two stable isotopes: Copper-63, with an abundance of 69.09%, and Copper-65, with an abundance of 30.91%. Hence, an arbitrary terrestrial piece of rock is likely to have more Copper-63 isotopes than Copper-65. This observation is contrary to your sample, suggesting it may not be terrestrial in origin.

Furthermore, certain meteorites are known to contain a variety of unusual elements and isotopic compositions that are not typically found on Earth, supporting the possibility that your rock could be a meteorite. Confirmation, however, requires thorough scientific analysis such as isotopic and elemental analysis.

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how many atoms are in 33 grams of titanium?

A) 1.72 x 10^23 atoms B) 2.88 x 10^23 atoms C) 3.65 x 10^23 atoms
D) 4.15 x 10^23 atoms

Answers

I think the answer is D

What would happen to the average kinetic energy of the molecules of a gas sample if the temperature of the sample increased from 20ºc to 40ºc?

Answers

The answer to this question would be: it would be increase

The kinetic energy of a molecule is influenced by the temperature. In this case, the temperature is increased from 20ºc to 40ºc so its kinetic energy would be increased. The increases won't be too big since the temperature used in the formula is Kelvin, not Celcius.
Final answer:

Increasing the temperature of a gas proportionally raises the average kinetic energy of the gas's molecules. With this increase, molecules move faster, indicating higher kinetic energy, resulting in a shift in kinetic energy distribution toward higher speeds overall.

Explanation:

When the temperature of a gas sample is increased, as mentioned, from 20ºc to 40ºc, there are some noticeable effects on the behavior of the molecular activity within the gas. The most notable effect is on the average kinetic energy of the gas molecules. According to kinetic-molecular theory, the temperature of a substance is proportional to the average kinetic energy of its particles. Hence, as the temperature increases, so does the average kinetic energy.

At higher temperatures, the distribution of kinetic energies among the atoms or molecules of the gas is broader than at lower temperatures. In more straightforward terms, molecules are moving more rapidly and have higher speeds at an increased temperature, indicating more kinetic energy. This shift in kinetic energy leads to a shift in the distribution toward higher speeds overall. So, when the gas's temperature has increased from 20ºC to 40ºC, the molecules' average kinetic energy has also subsequently increased.

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What happens when a chlorine atoms gains an electron?

Select one:
a. The ion has a -1 charge
b. A chloride ion is formed
c. The ion becomes an anion
d. All of the answer choices

Answers

a.) the ion has a -1 charge.

 If you add an electron, as is the case with chlorine, you upset the balance between the positive and negative charges.  There are 18 electrons and 17 protons, so the chlorine atom has become a charged chlorine ion with a charge of negative one (-1).

Which is a correct set of values of m for one of the subshells of n = 2?

Answers

Final answer:

For n = 4, s, p, d, and f subshells are found in the n = 4 shell of an atom, each with different values of m. The s subshell has one orbital, the p subshell has three orbitals, the d subshell has five orbitals, and the f subshell has seven orbitals.

Explanation:

For n = 4, l can have values of 0, 1, 2, and 3. Thus, s, p, d, and f subshells are found in the n = 4 shell of an atom. For l = 0 (the s subshell), m₁ can only be 0. Thus, there is only one 4s orbital. For l = 1 (p-type orbitals), m₁ can have values of −1, 0, +1, so we find three 4p orbitals. For l = 2 (d-type orbitals), m₁ can have values of -2, -1, 0, +1, +2, so we have five 4d orbitals. When l = 3 (f-type orbitals), m₁ can have values of -3, -2, -1, 0, +1, +2, +3, and we can have seven 4f orbitals. Thus, we find a total of 16 orbitals in the n = 4 shell of an atom.

What are the properties of metal that make it a useful material for electricians?

Answers

Metal conducts electricity, which makes it useful for electricians. Additionally, certain types of metal such as metal wire are flexible and can be manipulated and bent easily by the electrician. Finally, many types of metal are widely available for purchase in stores at a reasonable cost.

How many co2 molecules are generated from each pyruvate molecule that enters the mitochondrial matrix?

Answers

The co2 molecules that are generated from each pyruvate molecule that enters the mithochondria matrix, the number of co2 molecules is Three (3). It has a total of 3 co2 molecules that are generated from each pyruvate molecule that enter the mitochondria. 

which chemical element has the shortest name?

PPPPPPPPLLLLLLLLZZZZZZZ I need an answer ASAP

Answers

tin if you are asking which one it is written out, not shortened 
Hey there,
Tin, Gold, Iron

Hope this helps :))

~Top

Where do expect to find the most reactive metals on the periodic table;?

Answers

The most reactive metals on the periodic table would have to be the alkali metals.
I hope this helps!
Have a nice day (:

Answer:

You can find the most reactive metals in the periodic table by looking for metals called alkali metals.

Explanation:

Alkali metals are chemical elements of group 1A of the periodic table with similar properties. The group consists of the following metals: lithium (Li), sodium (Na), potassium (K), rubidium (Rb), cesium (Cs) and frâncio (Fr). They are low density metals, and moles. They are electropositive and highly reactive.

To know whether one metal is more reactive than another, it is important to remember the concept of electropositivity, that is, the ability of one atom to yield electrons to another atom during a bond.  Thus, if one metal is more electropositive than another, it has a greater tendency to lose electrons in a bond and therefore tends to be more reactive.

Series of chemical reactions in which the product of one reaction is the substrate for the next reaction

Answers

It is the Metabolic pathway

To solve such this we must know the concept of chemical reaction. Therefore, metabolic pathways is a Series of chemical reactions in which the product of one reaction is the substrate for the next reaction.

What is chemical reaction?

Chemical reaction is a process in which two or more than two molecules collide in right orientation and energy to form a new chemical compound. The mass of the overall reaction should be conserved.

There are so many types of chemical reaction reaction like combination reaction, double displacement reaction. Metabolic pathways is a Series of chemical reactions in which the product of one reaction is the substrate for the next reaction.

Therefore, metabolic pathways is a Series of chemical reactions in which the product of one reaction is the substrate for the next reaction.

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A vessel of volume 22.4 dm3 contains 2.0 mol h2 and 1.0 mol n2 at 273.15 k initially. all the h2 reacted with sufficient n2 to form nh3. calculate the partial pressures and the total pressure of the final mixture.

Answers

Final answer:

To calculate the partial pressures and total pressure of the final gas mixture, we can use Avogadro's law and the ideal gas law.

Explanation:

First, we need to determine the total volume of the gases in the vessel by using Avogadro's law. Since 1 mole of gas occupies approximately 22.4 L at standard temperature and pressure (STP), the total volume of gases is 3 moles x 22.4 L/mole = 67.2 L.

The partial pressure of each gas can be calculated using the ideal gas law. The ideal gas law equation is given by PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature.

Finally, we can calculate the partial pressures:

Partial pressure of H2 = (2 moles / 3 moles) x total pressure of the mixture

Partial pressure of N2 = (1 mole / 3 moles) x total pressure of the mixture

The total pressure of the final mixture can be calculated by summing up the partial pressures of each gas.

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The partial pressures of NH3, H2, and N2 are approximately 1.33 atm, 0 atm, and 0.33 atm, respectively, with a total pressure of approximately 1.67 atm in the final mixture.

Initially, the vessel contains 2.0 moles of H2 and 1.0 mole of N2 at 273.15 K. The reaction between H2 and N2 forms NH3 according to the balanced chemical equation:

3H2+N2 →2NH3

Since the balanced equation indicates that three moles of H2 react with one mole of N2 to produce two moles of NH3, it suggests that all of the H2 will react with the available N2.

After the reaction, the limiting reactant (N2) is completely consumed, resulting in the formation of NH3. The final mixture consists of NH3, with a partial pressure of approximately 1.33 atm (calculated based on the stoichiometry of the reaction) and no remaining H2 (partial pressure of 0 atm) or N2 (partial pressure of 0.33 atm).

The total pressure of the final mixture is the sum of the partial pressures of the individual gases. Therefore, the total pressure is approximately 1.67 atm. This calculation considers the ideal gas behavior of the gases involved and assumes that the volume of the vessel remains constant throughout the reaction.

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The circles, or orbits, for electrons are called energy levels. Each level can hold only a certain number of electrons. Add electrons to each level until you can’t add any more. How many electrons can each level hold?

Answers

It is a bit complicated because the second shell can hold only up to 8 for the elements under the periods but for the transition metals it can hold more.

Answer:

n = 1 can hold a maximum of 2 electrons

n = 2 , maximum 8 electrons

n = 3, maximum 18 electrons

Explanation:

As per the principles of quantum mechanics, the number of electrons that can be added to a given energy level is deduced based on the three quantum numbers: n, l , m(l) and m(s)

'n' is the principal quantum number which defines the energy level. It can take on integer values: 0,1,2,3...

'l' is the angular momentum quantum number which defines the shape of the orbital that an electron occupies

l = 0,1,2...(n-1)

where: l = 0 corresponds to s-orbital

l = 1 corresponds to p-orbital

l = 2, corresponds to d-orbital

'm(l)' is the magnetic moment quantum number which defines the orientation of an orbital  in space.

m(l) = -l, 0, +l

'm(s)' is the spin quantum number which defines the orientation of an electron is an orbital

m(s) = +1/2 or -1/2

An s, p or d-orbital can accommodate a maximum of 2, 6 and 10 electrons respectively

For energy level with n= 1

l = 0, i.e. s-orbital or 1s.

Therefore, the maximum number of electrons for a 1s orbital would be 2 resulting in an electron configuration of 1s²

For energy level with n= 2

l = 0, 1 i.e. s and p-orbitals

The maximum number of electrons would be:

[tex]2(s,orbital) + 6(p,orbital) = 8[/tex]

Electron configuration: 2s²2p⁶

For energy level with n= 3

l = 0, 1, 2 i.e. s, p and d-orbitals

The maximum number of electrons would be:

[tex]2(s,orbital) + 6(p,orbital) + 10(d,orbital)= 18[/tex]

Electron configuration: 3s²3p⁶3d¹⁰

What happens to the potential energy when heat flows out of a system? Why?

Answers

According the the first of thermodynamics, energy is neither created nor destroyed, energy is simply converted to other forms of energy. So in this case, heat is also a type of energy so when it flows out of the system, therefore this means that some of the initial potential energy was converted to heat and then flowed out of the system. Therefore potential energy will decrease.

Name the product formed by the oxidation of d-gulose.

Answers

Final answer:

The oxidation of d-gulose, a form of sugar, results in the formation of a product named 2-dehydro-3-deoxy-D-gluconate-6P.

Explanation:

The oxidation of d-gulose forms a product known as 2-dehydro-3-deoxy-D-gluconate-6P. This occurs along the Entner-Doudoroff metabolic pathway which primarily converts glucose into ethanol, reserving a net ATP. Oxidation is generally a process wherein a particular molecule loses electrons and increases its oxidation state. In the context of sugars like d-gulose, this usually involves the loss of hydrogen atoms or the gain of oxygen atoms.

This is a molecule that is produced when d-gulose is oxidized in a metabolic pathway called the Entner-Doudoroff pathway. The oxidation of d-gulose in this pathway converts it to 2-dehydro-3-deoxy-D-gluconate-6P and also produces one ATP.

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Which chemical activates the transformation of trypsinogen to trypsin?

Answers

The answer should be enteropeptidase

Enteropeptidase is a chemical that activates the transformation of trypsinogen to trypsin.

In biology and chemistry, activation refers to the process of preparing or energising something in preparation for a future reaction. The term "activation" in chemistry describes the reversible transformation of a molecule to a chemical and physical state that is essentially identical to the original state, with the distinguishing feature that the new state demonstrates a greater tendency to undertake a certain chemical reaction. Therefore, conceptually speaking, activation is the reverse of protection, where the resultant state shows a lower tendency to conduct a certain reaction. Enteropeptidase is a chemical that activates the transformation of trypsinogen to trypsin.

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The smallest particle of matter that retains the chemical properties of carbon is a carbon:

Answers

The answer will be Carbon Molecule

An island arc complex is formed where

A. two continental plates converge.
B. a volcano erupts along an oceanic plate.
C. a continental and oceanic plate converge.
D. two oceanic plates converge.

its D.. right?

Answers

The answer is D. Two Oceanic Plates Converge. You were right..

A geologist finds a section of rock that shows was ripple marks. What does it he pr send me or a ripple marks say about the area where the rock formed?

A. the rock formed in a fast moving stream
B. The rock formed under Earths surface at very high temptress
C. The rock formed from mollusk shells.
D. The rock was blown out of a volcano

Answers

I believe the answer is A. I hope this helps
Yea it is A because water tears away from the rock

A 14.01 g sample of n2 reacts with 3.02 g of h2 to form ammonia (nh3). if ammonia is the only product, what mass of ammonia is formed? hint: write the balance equation and use the appropriate mole ratio. it is a limiting reactant problem.

Answers

The complete balanced reaction for this is:

N2   +   3H2   -->   2NH3

 

First we convert the given masses into number of moles.

Molar mass of N2 = 28 g/mol

Molar mass of H2 = 2 g/mol

Therefore,

moles N2 = 14.01 / 28 = 0.5 moles

moles H2 = 3.02 / 2 = 1.51 moles

 

Then we find which has lower moles/coefficient ratio:

N2 = 0.5 / 1 = 0.5

H2 = 1.51 / 3 = 0.503

 

Since N2 has lower moles/coefficient ratio, therefore it is the limiting reactant.

So total moles of ammonia formed is:

moles NH3 =  0.5 moles N2 * (2 moles NH3 / 1 mole N2) = 1 mole NH3

 

The molar mass of NH3 is 17.031 g/mol, hence:

mass NH3 = 1 mole * 17.031 g/mol

mass NH3 = 17.031 grams

Final answer:

The mass of ammonia formed when 14.01 g of N2 reacts with 3.02 g of H2 is 16.97 g. This is determined by using the balanced chemical reaction and stoichiometry to find the limiting reactant, which is H2, and then calculating the amount of NH3 that can be produced from that reactant.

Explanation:

To determine the mass of ammonia formed when 14.01 g of N2 reacts with 3.02 g of H2, we first write the balanced chemical equation: N2(g) + 3H2(g) → 2NH3(g).

In this reaction, one mole of nitrogen gas reacts with three moles of hydrogen gas to form two moles of ammonia gas. To find out which reactant is the limiting reactant, we need to convert the masses of N2 and H2 to moles using their molar masses (N2: 28.02 g/mol, H2: 2.02 g/mol).

Calculating moles of reactants:


 N2: 14.01 g ÷ 28.02 g/mol = 0.5 moles
 H2: 3.02 g ÷ 2.02 g/mol = 1.495 moles


Using stoichiometry to find the limiting reactant:


 1 mole N2 reacts with 3 moles H2, so 0.5 moles N2 would require 1.5 moles H2.
 Since we only have 1.495 moles of H2, it limits the reaction.


The mass of NH3 formed is calculated from the mole ratio of H2 to NH3 (3:2) and the limiting reactant (H2):


 1.495 moles H2 × (2 moles NH3 / 3 moles H2) = 0.9967 moles NH3
 0.9967 moles NH3 × 17.03 g/mol (molar mass of NH3) = 16.97 g NH3 (rounded to two decimal places)

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