PH. There is a formula to find pH pH = -log [H + ] or pH = -log [H 3 O + ] – (brackets around a substance means that substances concentration in molarity)

Slides:



Advertisements
Similar presentations
Intro to Acids & Bases.
Advertisements

Hydrogen Ions and Acidity
Ch. 19 – Acids & Bases II. pH (p. 644 – 658).
PH and pOH Chem 332 – ODette. pH (Potential of Hydrogen) Measures the degree of acidity or basicity of an aqueous solution Corresponds to the hydrogen.
PH and Concentration. pH Recall water H 2 O H + + OH - Every water molecule produces one hydrogen ion and one hydroxide ion At equilibrium, K eq = [products]
PH (potential of Hydrogen). According to the Bronsted-Lowry theory, both acids and bases are related to the concentration of hydrogen ions. Acids will.
PH worksheet (#1).
Measuring pH and pOH.
Chapter 16: Equilibrium in Acid-Base Systems 16.1a: Self-ionization of Water K w pH and pOH.
PH.
Mr. Chapman Chemistry 30.  We are ready to use what we know about acids and bases to calculate the pH of various solutions.  Before we do this, however,
Ways to measure Acidity/Basicity What is pH? What is pOH?
Ch.15: Acid-Base and pH Part 1.
Acids and Bases. Ionization of Water H 2 O + H 2 O H 3 O + + OH - K w = [H 3 O + ][OH - ] = 1.0 
PH Scale. Ion product constant for water K w H 2 O  H + + OH - K w = [H + ] [OH - ] = 1.0 X mol/L Since [H + ] = [OH - ] for water Then each equals.
PH and pOH By: Sam F., Sam D., Rochani, Evan, Will, Sherry, Mariana.
Continuing into the world of acids and bases….  pH of a solution is the negative logarithm of the hydrogen ion concentration  pH = -log [H + ]  This.
Acids & Bases How We Measure Acids and Bases pH Blue Base.
pH Water Water is in equilibrium with its ions H 2 O(l)  H + (aq) + OH - (aq) K w = [H + ][OH - ] K w = 1.0 x at 25°C In neutral solutions [H.
TOPIC: pH 1. NaCl 2. C 2 H 5 OH 3. H 2 SO 4 4. NaOH 5. C 12 H 22 O CaI 2 7. HF 8. Mg(OH) 2 9. NH 3 10.CH 3 COOH Do Now: Identify as acid, base, salt,
Acids and Bases pH Calculations
PH and concentration.
ASİT. BAZ [H + ].[OH - ]=1x pH=-log[H + ] pOH=-log[OH - ] pH + pOH=14.
Chapter 19 Self-Ionization of Water and pH. Strong vs. Weak Strong: 100% dissociation of H + or OH – – Strong electrolytes (conduct electricity very well)
WHAT IS PH? Concentration and hydrogen ions and hydroxide ions are a measure of The acidity and alkalinity of a solution.
Wake-up Write down each equation below. Identify the base (B), acid (A), conjugate acid (CA), and conjugate base (CB). 1.NH 3 + HCN  NH 4 + CN 1.HSO 4.
Calculating pH and pOH. pH pH = - log [H + ] [H + ] = the hydrogen ion concentration pH: “potential of hydrogen” - A way of expressing the hydrogen ion.
Acid/Base Indicators Substance that changes color in the presence of an acid or a base – Red or Blue Litmus – Phenolphthalein (phth) – Bromothymol blue.
Chemistry Notes: pH Calculations Chemistry
Examples-pH and pOH. Example Find the pH of a 0.03 M solution of HBr.
pH scale Measures the amount of H + in a solution. Scale used to measure whether a substance is an acid or a base. Lower numbers are acids. Higher numbers.
Logarithms. The logarithm of a number is the number of times 10 must be multiplied by itself to equal that number.
Section 16.2 Determining the Acidity of a Solution 1.To understand pH and pOH 2.To learn to find pH and pOH for various solutions 3.To use a calculator.
* Name the following acids: * HI * HNO 3 * HCl * Write the formula for the following acids: * Hydrofluoric Acid * Nitrous Acid * Hydrobromic acid.
DO NOW: What is pH a measure of?. The pH scale pH  pH is the -log of the hydrogen ion concentration  Mathematically it is represented by the equation:
NEUTRALIZATION REACTIONS Acids and Bases. What is an acid? A compound which reacts to release H+ ions into solution.  HCl  H+ and Cl-
Yesterday’s Homework Page 611 # 19 Page 612 # 20.
NOTES: 19.2 – Hydrogen Ions & Acidity (pH and pOH)
C. Johannesson Ch. 15 & 16 - Acids & Bases II. pH (p )
Acids & Bases pH. Ionization of Water H 2 O + H 2 O H 3 O + + OH - K w = [H 3 O + ][OH - ] = 1.0  Kw=ionization constant for H2O.
 pH: The negative of the common logarithm of the hydronium ion concentration [H 3 O + ] ◦ pH stands for the French words pouvoir hydrogene, meaning “hydrogen.
A bit more on the pH scale. (molar concentrations of H + and OH - ions) ACIDS BASES Contain greater number of H+ ions than OH- ions pH of (0-6.9)) Contain.
Section 16.2 Determining the Acidity of a Solution 1.To understand and determine pH and pOH 2.To learn methods for measuring pH of a solution Objectives.
Logarithms. The logarithm of a number is the number of times 10 must be multiplied by itself to equal that number.
Power of hydrogen. pH scale logarithmic scale expresses H +1 concentration, [H +1 ] pH = -log[H +1 ]pH = -log[H +1 ] If pH changes by factor of 1, [H.
[H 3 O + ] Aqueous Solutions Brackets means concentration (Molarity) 1x10 -7 M neutral 1x10 -5 M 1x10 -9 M acidic = > [OH - ] acid base M
PH. Ionization of Water  When compounds dissociate/ionize in an aqueous solution, they produce ions - hydronium (H 3 O + ) and hydroxide (OH - )  These.
PH scale.
Warm-Up 12/16/2016 A mixture of gases (NO2,CO2, SO2) is collected in a bottle. The partial pressure of NO2 is 1.25 atm, and the partial pressure of.
PH & pOH Notes 1. What is the range for the pH scale? What is the range for acidic pH? What pH is neutral? What is always the total of the pH + pOH.
Ch. 19 Acids & Bases II. pH.
Can you calculate for acids and bases?
Calculating Concentration
Review Practice What is the molality of a solution created by adding 58 grams of magnesium hydroxide to 4 liters of water? Answer: 0.25 m Mg(OH)2 What.
Acids and Bases.

Acids & Bases II. pH.
pH Scale Definition of Acids and Bases
Calculating Concentration
4.11: pH and pOH Chemistry 12.
Calculating pH & POH.
Ch. 15 & 16 - Acids & Bases II. pH (p ) C. Johannesson.
Ch – Acids & Bases II. pH (p. 644 – 658).
Acids and Bases.
Calculating pH (and pOH)
PH and pOH Acid Neutral Base.
Unit 5- lecture 5 Using the pH scale to characterize acids and bases.
PH Scale.
Ch. 14 & 15 - Acids & Bases II. pH.
Power of hydrogen.
Presentation transcript:

pH

There is a formula to find pH pH = -log [H + ] or pH = -log [H 3 O + ] – (brackets around a substance means that substances concentration in molarity) To find the pH you need to H + concentration Most of the time you will get an acids concentration

Finding the [H + ] To find [H+] you need to multiply the concentration of the acid by how many hydrogens are in the formula. So, if you have a M HCl solution, what is [H + ]? If you have a M H 2 SO 4 solution, what is [H 3 O + ]?

pH If you have a [H + ] of 1x10 -6, use the formula to find the pH? Remember the formula is pH = -log [H + ] or pH = -log [H 3 O + ] It has a pH of 6

pH If [H + ] = 1x10 -n, then pH = n If pH = n, then [H + ] = 1x10 -n What is the pH if [H + ] = 1x10 -9 ? What is the pH if [H + ] = 1x10 -4 ? What is the [H + ] if pH = 11? What is the [H + ] if pH = 5?

pH What is the pH is you have a 2.3x10 -4 M HNO 3 solution? What is the pH is you have a 5.6x10 -5 M H 2 CO 3 solution?

pH You can undo pH using the following formulas [H + ] = 10 -pH or [H 3 O + ] = 10 -pH What is the [H + ] if the pH is 5.6? What is the [H 3 O + ] if the pH is 8.7?

pH scale How can you measure the pH of a base? Acid Base

pOH You can find pOH using the following formula pOH = -log [OH - ] To find the pOH you need [OH - ] If you have a M Ca(OH) 2 solution, what is the [OH - ]?

pOH If [OH - ] = 1x10 -n, then pOH = n If pOH = n, then [OH - ] = 1x10 -n What is the pOH if [OH - ] = 1x10 -3 ? What is the pOH if [OH - ] = 1x10 -9 ? What is the [OH - ] if pOH = 4? What is the [OH - ] if pOH = 8?

pOH What is the pOH is you have a 5.6x10 -3 M LiOH solution? What is the pOH is you have a 4.7x10 -5 M Sr(OH) 2 solution?

pOH You can undo pH using the following formulas [OH - ] = 10 -pOH What is the [OH - ] if the pH is 2.7? What is the [OH - ] if the pH is 4.8?

pH and pOH pH + pOH = 14 What is the pH if the pOH is 6.5? What is the pOH if the pH is 3.3?

Formulas pH = -log [H + ] or pH = -log [H 3 O + ] pOH = -log [OH - ] [H + ] = 10 -pH or [H 3 O + ] = 10 -pH pOH = -log [OH - ] pH + pOH = 14