Water and Aqueous Systems

Similar documents
Heat Capacity of Water A) heat capacity amount of heat required to change a substance s temperature by exactly 1 C

CHEMISTRY Ch. 14 Notes: Mixtures and Solutions NOTE: Vocabulary terms are in boldface and underlined. Supporting details are in italics.

Solvent does the dissolving (acetone) Solute the substance being dissolved (Styrofoam ) Soluble able to be dissolved

Properties of Solutions

The Water Molecule. Draw the Lewis structure. H O H. Covalent bonding. Bent shape

H 2 O WHAT PROPERTIES OF WATER MAKE IT ESSENTIAL TO LIFE OF EARTH? Good solvent High Surface tension Low vapor pressure High boiling point

How can homogeneous and heterogeneous mixtures be. 1. classified? 2. separated?

Aqueous Solutions (When water is the solvent)

Unit 11: Chapters 15 and 16

Name Chemistry Pre-AP. Notes: Solutions

Water & Solutions Chapter 17 & 18 Assignment & Problem Set

SOLUTIONS. Heterogeneous Mixtures. Section 8.1: Solutions and Other Mixtures. Heterogeneous Mixtures (cont d) CHAPTER 8.

Unit 6 Solids, Liquids and Solutions

Chapter 13 - Solutions

Intermolecular Forces of Attraction. Attractive forces that cause atoms or molecules to stick together

What is a solution? 22.1

41. Density compares the of substances which have the same. A) mass; weight D) temperature; mass B) volume; mass E) mass; temperature C) mass; volume

Section 6.2A Intermolecular Attractions

15.1 Water and Its Properties > Chapter 15 Water and Aqueous Systems Water and Its Properties Homogeneous Aqueous Systems

Distinguish Describe Explain Describe demonstrate Slide 2 of 29

Life s Chemical Basis. Chapter 2

THE EXTRAORDINARY PROPERTIES OF WATER

I. Importance. II. Properties. II. Properties. III. Dissolving in Water. II. Properties. A. Formation/Destruction. Topic 5: The Water We Drink

A.% by mass (like % composition)

General Chem Solution.notebook. Solutions. Mar 12 8:19 AM

The Biological Importance of Water

MIXTURES AND DISSOLVING. CE/Honors Chemistry Unit 10

Chem 1075 Chapter 13 Liquids and Solids Lecture Outline

9.1 Water. Chapter 9 Solutions. Water. Water in Foods

Uniform properties throughout! SOLUTE(S) - component(s) of a solution present in small amounts.

Electrical Conductivity in Solutions

Mixtures and Solutions

Solvents. Solvents at the hardware store

Chapter 6 Chemistry of Water; Chemistry in Water

6.01 Solutions. The Chemistry of Matter in Water. Dr. Fred Omega Garces. Chemistry 111, Miramar College. 1 Solutions. January 10

Chapter 13. Properties of Solutions. Lecture Presentation. John D. Bookstaver St. Charles Community College Cottleville, MO

Water Properties Foldable

1 Solutions and Other Mixtures

Let s Review Bonding. Chapter 3 Water and Life 7/19/2016 WATER AND SOLUTIONS. Properties of Water

CHAPTER 7: Solutions & Colloids 7.2 SOLUBILITY. Degrees of Solution. Page PHYSICAL STATES of SOLUTIONS SOLUTION

Chemistry, The Central Science, 11th edition Theodore L. Brown, H. Eugene LeMay, Jr., and Bruce E. Bursten Chapter 13 Properties of Solutions

BIOLOGY 101. CHAPTER 3: Water and Life: The Molecule that supports all Live

2 How Substances Dissolve

Name Class Date. In the space provided, write the letter of the term or phrase that best completes each statement or best answers each question.

Scientists learned that elements in same group on PT react in a similar way. Why?

Four elements make up about 90% of the mass of organisms O, C, H, and N

Water and solutions. Prof. Ramune Morkuniene, Biochemistry Dept., LUHS

Name: Date: Class Notes Chemistry. Energy is the ability to move or change matter.

Intermolecular Forces

The Chemistry of Life 2007-

Intermolecular forces Liquids and Solids

The components of a mixture sometimes can be seen easily; but mostly it s not quite easy to distinguish the components in a mixture.

Solutions and other Mixtures. Ch 20.1

Chemistry Unit 1: Section1 - Elements, Compounds, & Mixtures

Lecture Presentation. Chapter 12. Solutions. Sherril Soman, Grand Valley State University Pearson Education, Inc.

2 How Substances Dissolve

Name Class Date. How do mixtures differ from elements and compounds? How can mixtures be separated? What are solutions?

Water - HW. PSI Chemistry

Chapter 13 Properties of Solutions

Water is one of the few compounds found in a liquid state over most of Earth s surface.

CHEMISTRY Matter and Change. Chapter 12: States of Matter

Valence Electrons. 1. The electrons responsible for the chemical properties of atoms, and are those in the outer energy level, the valence level.

Why are we studying chemistry?

Chapter 12. Preview. Objectives Solutions Suspensions Colloids Solutes: Electrolytes Versus Nonelectrolytes

13.1 States of Matter: A Review 13.2 Properties of Liquids A. Evaporation B. Vapor Pressure C. Surface Tension 13.3 Boiling Point and Melting Point

IB Chemistry Solutions Gasses and Energy

REVIEW: Water Structure

The Chemistry of Life

Atoms. - Proton - Neutron. - Electron

Warm UP. between carbonate and lithium. following elements have? 3) Name these compounds: 1) Write the neutral compound that forms

Chapter 12 Intermolecular Forces and Liquids

models (three-dimensional representation containing essential structure of

Vocabulary: Matter: has mass and takes up space (pure substances and mixtures) Pure Substances: composition definite, elements and compounds.

M7 Question 1 Higher

THE CHEMISTRY OF LIFE

Test bank for Chemistry An Introduction to General Organic and Biological Chemistry 12th Edition by Timberlake

CHAPTER 13. States of Matter. Kinetic = motion. Polar vs. Nonpolar. Gases. Hon Chem 13.notebook

Name Class Date. How do mixtures differ from elements and compounds? How can mixtures be separated? What are solutions?

CHAPTER-2 NCERT SOLUTION

FINAL EXAM REVIEW I will provide all of the same sheets I provided on the quizzes this semester.

Ch. 7 Foundations of Chemistry

Chemistry A: States of Matter Packet Name: Hour: Page 1. Chemistry A States of Matter Packet

The Properties of Water

PHC Chapter 15 only Quiz Show

Chapters 11 and 12: Intermolecular Forces of Liquids and Solids

Pure Substances, Mixtures, and Solutions

March 30, Chapter 22 Notes.notebook. Section 1: How Solutions form

Station 1 Water is a polar molecule and has a very unique structure

Chemistry Fourth Marking Period Review Sheet Spring, Mr. Wicks

file:///biology Exploring Life/BiologyExploringLife04/

Objectives. Inertia. Is air matter? Is Light matter? Chapter 2. Chapter 2. Table of Contents. Chapter 2. Chapter 2. Section 1 What Is Matter?

H = Hydrogen atoms O = Oxygen atoms

Ask the Professor. Michael Patrick, Ph.D. University of Wisconsin - Madison. Mary Gruhl, Ph.D. University of Wisconsin - Milwaukee

Chapter 9. Solutions

General Chemistry A

Honors Chemistry Fourth Marking Period Review Sheet Spring, Mr. Wicks


Atom - the smallest unit of an element that has the properties of that element From the Greek word for indivisible

Compounds, Mixtures, and Elements Topic 3 Oh My!!!

Solvent: the fraction of a solution in which the other components are dissolved. (This is usually the liquid) Solute: a substance that is dissolved

Transcription:

Water and Aqueous Systems

The Water Molecule: a Review Water is a simple tri-atomic molecule, H 2 O Each O-H bond is highly polar, because of the high electronegativity of the oxygen (N, O, F, and Cl have high values) bond angle of water = 105 o due to the bent shape, the O-H bond polarities do not cancel. This means: water is a polar molecule.

The Water Molecule: a Review δ is the lowercase Greek symbol delta Thus, δ+ water means has a a partial partial negative end (0xygen) positive and a partial charge positive end (Hydrogen), and it is called polar because of these areas of difference H δ- O H δ+ δ+ δ- means a partial negative charge

The Water Molecule Water s bent shape and ability to hydrogen bond gives it many special properties! What was hydrogen bonding? Water molecules are attracted to one another by dipole interactions p. 446 This hydrogen bonding gives water: a) its high surface tension, and b) its low vapor pressure.

a) High Surface Tension? liquid water acts like it has a skin glass of water bulges over the top Water forms round drops spray water on greasy surface All because water hydrogen bonds. how does this insect walk on the water? (see next slide)

Due to the high Surface Tension of water!

Surface Tension One water molecule can hydrogen bond to another because of this electrostatic attraction. Also, hydrogen bonding occurs with many other molecules surrounding them on all sides. d- d+ H d+ d- d+ H d+

A water molecule in the middle of a solution is pulled in all directions. Surface Tension

Surface Tension Not true at the surface. They are pulled down and to each side, not upward since the water and air are not attracted to each other. This holds the molecules at the surface together tightly. This causes surface tension.

Surface Tension Water drops are rounded, because all molecules on the edge are pulled to the middle, not outward to the air! A drop has the least amount of surface area for any given volume.

Glass has polar molecules. Glass can also hydrogen bond. Surface Tension This attracts the water molecules. Some of them are pulled up a cylinder wall.

Meniscus A meniscus is the curved surface at the top of a column of liquid. Thus, water curves up along the sides of glass. This makes the meniscus, as in a graduated cylinder However, Plastics are non-wetting; there is no attraction to water

Meniscus Water is attracted to the Glass, thus curves up the sides Water not attracted to Plastic, but to other water molecules

Surface tension All liquids have surface tension water is just higher than most others, due to the hydrogen bonding present How can we decrease surface tension? Use a surfactant - surface active agent Also called a wetting agent, like detergent or soap (makes water wetter ) Interferes with hydrogen bonding

b) Low vapor pressure? Hydrogen bonding also explains water s unusually low vapor pressure. It holds water molecules together, so they do not escape (evaporate) easily, like gasoline or acetone does. This is a good thing, because lakes and oceans would evaporate very quickly due to their large surface area!

Ice Most liquids contract (get smaller) as they are cooled. They get more dense. When they change to solid, they are more dense than the liquid. Solid metals sink in their own liquid metal. But, ice floats in water. Why?

Ice Water becomes more dense as it cools, until it reaches about 4ºC. Then it becomes less dense by starting to expand (Want your water pipes to freeze in the winter?) Because as the molecules slow down, they arrange themselves into honeycombshaped crystals. These are held together by hydrogen bonds.

Liquid = random shaped arrangement Solid = honeycombshaped arrangement O

Ice Is 10% lower in density than liquid water. Water freezes from the top down. The layer of ice on a pond acts as an insulator for water below Why is ice less dense than liquid water? The structure of ice is a regular open framework of water molecules, arranged like a honeycomb.

Ice A considerable amount of energy is required to return water in the solid state to the liquid (called melting) The heat absorbed when 1 g of water changes from solid to liquid is 334 J. This is the same amount of energy needed to raise the temperature of 1 g of liquid water from 0 o C to 80 o C!

Solvents and Solutes Solution - a homogenous mixture, that is mixed molecule by molecule; made of: 1) a Solvent - the dissolving medium 2) a Solute - the dissolved particles Aqueous solution- a solution with water as the solvent. Particle size is less than 1 nm; cannot be separated by filtration

Parts of a Solution: 1. the Solute A solute is the dissolved substance in a solution. Salt in salt water Sugar in soda drinks Carbon dioxide in soda drinks 2. the Solvent A solvent is the dissolving medium in a solution. Water in salt water Water in soda

Solutions Keep in mind that solutions do not have to contain water, but this is the type we are studying in this chapter = aqueous solutions Example: air and jewelry are also types of solutions.

Solvents There are a tremendous number of solutions we use in our daily lives!

Concentrated vs. Dilute Lots of solute, but little solvent Lots of solvent, but little solute

Aqueous Solutions Water dissolves ionic compounds and polar covalent molecules very well. The rule is: like dissolves like Polar dissolves polar. Nonpolar dissolves nonpolar. Oil is nonpolar. Oil and water don t mix. Salt is ionic- makes salt water.

The Solution Process Called solvation. Water 1) breaks the + and - charged pieces apart, and 2) surrounds them. But, in some ionic compounds, the attraction between ions is greater than the attraction exerted by water Barium sulfate and calcium carbonate do not dissolve in water!

H How Ionic solids dissolve in water These ions have been pulled away from the main crystal structure by water s polarity. H H H H These ions have been surrounded by water, and are now dissolved!

Solids will dissolve if the attractive force of the water molecules is stronger than the attractive force of the crystal. If not, the solids are insoluble. Water doesn t dissolve nonpolar molecules (like oil) because the water molecules can t hold onto them. The water molecules hold onto other water molecules, and separate from the nonpolar molecules. Nonpolars? No repulsion between them

Electrolytes and Nonelectrolytes Electrolytes- compounds that conduct an electric current in aqueous solution, or in the molten state all ionic compounds are electrolytes because they dissociate into ions (they are also called salts ) barium sulfate- will conduct when molten, but is insoluble in water!

Electrolytes and Nonelectrolytes Do not conduct? = Nonelectrolytes. Most are molecular materials, because they do not have ions Not all electrolytes conduct to the same degree there are weak electrolytes, and strong electrolytes depends on: the degree of ionization

Electrolytes vs. Nonelectrolytes The ammeter measures the flow of electrons (current) through the circuit. If the ammeter measures a current and the bulb glows, then the solution conducts. If the ammeter fails to measure a current and the bulb does not glow, the solution is non-conducting.

Electrolytes and Nonelectrolytes Strong electrolytes exist as nearly 100 % ions Weak electrolytes have only a fraction of the solute that exists as ions How do you know if it is strong or weak? Refer to the rules on the handout sheet.

Electrolyte Summary Substances that conduct electricity when dissolved in water, or molten. Must have charged particles that can move. Ionic compounds break into charged ions: NaCl Na 1+ and Cl 1- These ions can conduct electricity.

Nonelectrolytes do not conduct electricity when dissolved in water or molten Polar covalent molecules such as methanol (CH 3 OH) don t fall apart into ions when they dissolve. Weak electrolytes don t fall completely apart into ions. Strong electrolytes do ionize completely.

Hydrate Water of Hydration (or Water of Crystallization) Water molecules are chemically bonded to solid salt molecules (not in solution) These compounds have fixed amounts of water. The water can be driven off by heating:. + heat CuSO 4 5H2 O CuSO 4 + - heat 5H 2 O Anhydrous Called copper(ii)sulfate pentahydrate.

Hydrates Since heat can drive off the water, the forces holding the water are weak If a hydrate has a vapor pressure higher than that of water vapor in air, the hydrate will effloresce by losing the water of hydration

Hydrates Some hydrates that have a low vapor pressure remove water from the air to form higher hydrates- these are called hygroscopic used as drying agents, or dessicants packaged with products to absorb moisture

Hydrates Some compounds are so hygroscopic, they become wet when exposed to normally moist air - called deliquescent remove sufficient water to dissolve completely and form solutions

Mixtures that are NOT Solutions: 1. Suspensions: mixtures that slowly settle upon standing. Example: sand in water Particles of a suspension are greater in diameter than 1000 nm. Can be separated by filtering 2. Colloids: heterogeneous mixtures with particles between the size of suspensions and true solutions (1-1000 nm)

Mixtures that are NOT Solutions The colloid particles are the dispersed phase, and are spread throughout the dispersion medium The first colloids were glues. Others include mixtures such as gelatin, paint, aerosol sprays, and smoke (next slide) lists some common colloidal systems and examples

Mixtures that are NOT Solutions Many colloids are cloudy or milky in appearance when concentrated, but almost clear when dilute They do not settle out They can not be filtered out Colloids exhibit the Tyndall effect - the scattering of visible light in all directions. suspensions also show Tyndall effect

Colloids and suspensions scatter light, making a beam visible, due to their large particle size. Solutions do not scatter light, because of their small particle size. The Tyndall Effect You can see the light beam because the large particles reflect the light Here you cannot see the light beam; particles are too small to reflect light colloid solution Which glass contains a colloid? Should you drive in fog with your high beams on? Why?

Note that you can easily see the sunbeams, probably due to the presence of fog (a colloid) in the forest reflecting light

Mixtures that are NOT Solutions Flashes of light are seen when colloids are studied under a microscope- light is reflecting- called Brownian motion to describe the chaotic movement of the particles. Observed by Robert Brown. (next slide) will summarize the properties of solutions, colloids, and suspensions

Mixtures that are NOT Solutions Emulsions- dispersions of a liquid in a liquid (2 immiscible liquids + an emulsifier) an emulsifying agent is essential for maintaining stability; it has one polar end, and the other end is nonpolar oil and water not soluble; but with soap or detergent added, they will be. Oil + vinegar in dressing are they soluble? What makes up Mayonnaise? (page 462) What makes up Margarine?

Distillation equipment (Distillation works because of differences in boiling points) The condenser has cool water that turns the vapors back into liquid The distillate is then collected as a liquid. Chemicals are heated, and those that boil first will escape as vapor