Drill: Determine the Ksp for Mn2S3 when the solubility is 1 x 10-20.

Slides:



Advertisements
Similar presentations
Metal Complexes -- Chapter 24
Advertisements

Complex Ions.
Transition Metals and Coordination Chemistry
Transition Metals & Coordination Compounds
Transition Metals and Coordination Chemistry
Chapter 9 Coordination Chemistry I Structures and Isomers.
Transition Metal Chemistry and Coordination Compounds
CHAPTER 3: COORDINATION CHEMISTRY CHEM210/Chapter 3/2014/01 A coordination compound, sometimes called a coordination complex, contains a central metal.
Prentice-Hall © 2002 Complex Ions and Coordination Compounds.
Chapter 23: The Transition Elements and Their Coordination Compounds
Lecture 294/13/05. Counting electrons 96,500 C/mol e-
Transition Metal Complexes. Transition metal complexes consist of a central Transition metal ion surrounded by a number of ligands. As a result of their.
Transition Metal Chemistry and Coordination Compounds Green/Damji – Chapter 3 Chang - Chapter 22 Copyright © The McGraw-Hill Companies, Inc. Permission.
Chemistry of Coordination Compounds Brown, LeMay Ch 24 AP Chemistry Monta Vista High School To properly view this presentation on the web, use the navigation.
Chapter 24 Transition Metals and Coordination Compounds 2007, Prentice Hall Chemistry: A Molecular Approach, 1 st Ed. Nivaldo Tro Roy Kennedy Massachusetts.
COMPLEX IONS: PART 1 From left to right, aqueous solutions of: Co(NO 3 ) 2 (red); K 2 Cr 2 O 7 (orange); K 2 CrO 4 (yellow); NiCl 2 (green); CuSO 4 (blue);
Complexes.
Starter Electronic configuration of: Sc3+ Fe2+ Cu+
Daniel L. Reger Scott R. Goode David W. Ball Chapter 19 Transition Metals, Coordination Chemistry, and Metallurgy.
Chapter 21(a) Transition Metals and Coordination Chemistry.
25-1Werner’s Theory of Coordination Compounds: An Overview
Coordination Complexes Chapter 20. Copyright © Houghton Mifflin Company. All rights reserved.20 | 2 What we learn from Chap 20 We begin the chapter with.
COORDINATION COMPOUNDS
Transition Metal Chemistry and Coordination Compounds
Transition Metals and Coordination Compounds. Transition Metals The transition metals are the d-block elements. The Inner Transitions metals are the lanthanides.
Transition Metal Chemistry and Coordination Compounds Chapter 20 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display.
Chapter 21 Transition Metals and Coordination Chemistry.
Drill: Determine the Ksp for Mn 2 S 3 when the solubility is 1 x
Complex ions Transition metals form at least one cation with vacant d orbitals.
Chem. 1B – 11/17 Lecture.
The Chemistry of Coordination Compounds Chapter 20 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display.
TM I-Intro to Complexes
LECTURE 4 THEME: Complex compound in biological systems. associate prof. Dmukhalska Ye. B.
Chapter 9 Coordination Chemistry I Structures and Isomers.
1 Transition Metal Chemistry and Coordination Compounds Chapter 22 Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or.
Copyright©2000 by Houghton Mifflin Company. All rights reserved. 1 Transition Metals...show great similarities within a given period as well as within.
Prentice-Hall © 2007Slide 1 of 59 Coordination Chemistry.
Coordination complexes
Chemistry of Coordination Compounds
Chemistry of Coordination Compounds
Transition Metals and Coordination Chemistry
Chapter 9 Coordination Chemistry I
COORDINATION COMPOUNDS
Transition Metals and Coordination Compounds
Chem. 1B – 11/15 Lecture.
COMPLEX IONS: PART 1 From left to right, aqueous solutions of: Co(NO3)2 (red); K2Cr2O7 (orange); K2CrO4 (yellow); NiCl2 (green); CuSO4 (blue); KMnO4 (purple).
Werner’s Coordination Chemistry
Chapter 9 Coordination Chemistry I
Chapter 21 Transition Metals and Coordination Chemistry...show great similarities within a given period as well as within a given vertical group. Key reason:
AH Chemistry – Unit 1 Transition Metals.
The Chemistry of Coordination Compounds
The Chemistry of Coordination Compounds
Coordination Chemistry
Coordination Chemistry
Co-ordination compounds or complexes
Coordination Compounds: AP Material
Metal Complexes -- Chapter 24
Chapter 23 Transition Metals and Coordination Chemistry
Coordination Chemistry
Sections 2-4 Transition Metal Complexes
Transition Metals and Coordination Chemistry
Chapter 9 Lecture 1 Coordination Chemistry Structure
Example 24.1 Writing Electron Configurations for Transition Metals
Coordination Chemistry
Coordination Chemistry
CHEMISTRY OF COORDINATION COMPOUNDS
Hybridization vs. MO for Methane
Isomerism: two main kinds
Coordination Chemistry
The Chemistry of the Transition Elements
Presentation transcript:

Drill: Determine the Ksp for Mn2S3 when the solubility is 1 x 10-20

Complex Ions

Complex Ion An ion formed when a positive central element binds with multiple ions or polar molecules

The central element is almost always a positively charged metal Complex Ion The central element is almost always a positively charged metal

Describe or define a Complex Ion

Negatively charged ion Anion Negatively charged ion

Positively charged ion Cation Positively charged ion

Metal Ion Examples Cu+2 Cu+ Au+ Ag+ Zn+2 Ni+2 Pt+2 Co+2 Al+3

Ligands The negative ions or polar molecules bound by the central element in a complex ion

Ligand Examples Cl- F- H2O NH3 CN- Br- NO O2 OH-

Ligands that can bind to more than one point Polydentate Ligands Ligands that can bind to more than one point

Ligands that can bind to two points in a complex ion Bidentate Ligands Ligands that can bind to two points in a complex ion

Bidentate Examples H2N-CH2-CH2-NH2 -OOC-COO-

Ligands that can bind to three points in a complex ion Tridentate Ligands Ligands that can bind to three points in a complex ion

Tridentate Examples H2-C-COO- HO-C-COO-

Polydentate ligands that bind to metal ions in solution Chelates Polydentate ligands that bind to metal ions in solution

Coordination Number The number of points in which ligands bind to the central element in a complex ion

Coordinate Covalent Bond Covalent bonds in which both electrons involved are donated by one atom

Drill: Define: Complex ion Ligand Coordination number

The bonds formed in a complex ion are coordinate covalent bonds Complex Ions The bonds formed in a complex ion are coordinate covalent bonds

A complex ion and its counter ion Coordination Complex A complex ion and its counter ion

The bonds formed in a complex ion are coordinate covalent bonds Complex Ions The bonds formed in a complex ion are coordinate covalent bonds

Complex Ion Because of the type bonding, they are sometimes called coordinate complexes

AP CHM HW Read: Chapter 15 Problems: 3 & 5 Page: 445

1) Name cations before anions Naming Complexes 1) Name cations before anions

2) Name ligands before metal in the complex ion Naming Complexes 2) Name ligands before metal in the complex ion

a) give neutral compds normal names except: 2) Naming Ligands a) give neutral compds normal names except:

H2O aqua NH3 amine CO carbonyl NO nitrosyl

b) change -ide endings to -o for all anions 2) Naming Ligands b) change -ide endings to -o for all anions

c) name ligands alphabetically 2) Naming Ligands c) name ligands alphabetically

d) use geometric prefixes for monodentate ligands 2) Naming Ligands d) use geometric prefixes for monodentate ligands

e) use bis- for 2 & tris- for 3 polydentate ligands 2) Naming Ligands e) use bis- for 2 & tris- for 3 polydentate ligands

a) use the normal name if the complex ion is (+) 3) Naming Metal a) use the normal name if the complex ion is (+)

b) make the metal ending -ate if the complex ion is (-) 3) Naming Metal b) make the metal ending -ate if the complex ion is (-)

d) use Roman numerals in () to indicate metal ox # 3) Naming Metal d) use Roman numerals in () to indicate metal ox #

Name the Following: [Pt(NH3)4]Cl2 [Co(H2O)2Cl4]-2 [Cu(H2O)2(en)2]I2

AP CHM HW Read: Chapter 15 Name each in Problem 5 Page: 445

Predict # of isomers of each: [Pt(NH3)4 Cl2] [Co(H2O)3Cl3]

Drill: Name each [Pt (H2O)2(en)2]+2 [Co(H2O)2F2I2]-2 [ZnNH3ClFI]-1

Complex Ion Shapes 2-linear 4-tetrahedral or sq pl 6-octahedral

Square planar vs tetrahedral Geometric Isomers Square planar vs tetrahedral cis vs trans

Geometric Isomers Tetra vs Sq Pl

Geometric Isomers Square Planer X Y Y X

Geometric Isomers Bunched octa- T-shaped octa- bis: cis vs trans

T-Shaped vs Bunched X X X X X X

Optical Isomers Tri-bis mirror images

Cis vs trans

Optical isomers

Predict isomer # [Pt (H2O)2(en)2]+2 [Co(H2O)2F2I2]-2 [ZnNH3ClFI]-1

Name & Predict isomer # [FeNH3Cl2I]-1

AP CHM HW Read: Chapter 15 Problem: 13 Page: 445

CN- > NO2- > en > NH3 > NCS- > H2O > F- > Cl- Field Strength CN- > NO2- > en > NH3 > NCS- > H2O > F- > Cl-

Field Strength CN- is strong field Cl- is weak field

Determines d-level splitting or Do(splitting energy) Field Strength Determines d-level splitting or Do(splitting energy)

dlevel

Low field strength (small splitting) dlevel

High field strength (large splitting) dlevel

Low spin High spin dlevel

Large Do yields low spin or diamagnetic compds Field Strength Large Do yields low spin or diamagnetic compds

Small Do yields high spin or paramagnetic compds Field Strength Small Do yields high spin or paramagnetic compds

Name, shape, & possible isomerism [Pt(NH3)2I4]-2 Determine: Name, shape, & possible isomerism

Drill: Determine the name, shape & isomers of: [Co(H2O)3Cl3]-1

Drill: Determine the name, shape & isomers of: [CuCl2I2]-2

Determine the name, shape & isomers of: [ZnBr2Cl2]-2

[Co(NH3)6]+3 yellow [Co(NH3)5NCS]+2 orange [Co(NH3)5H2O]+2 red [Co(NH3)5Cl]+2 purple t-[Co(NH3)4Cl2]+1 green

Complex Ion Equilibria Cu+2 + 4 NH3 [Cu(NH3)4]+2 [[Cu(NH3)4]+2] [Cu+2][NH3]4 Kf =

Calculate the ratio of [Cu+2]/ [Cu(NH3)4]+2 when Cu+2 is added to a 0 Calculate the ratio of [Cu+2]/ [Cu(NH3)4]+2 when Cu+2 is added to a 0.10 M NH3 solution: Kf = 2.0 x 1012

AP CHM HW Read: Chapter 15 Problem: 37 Page: 446

The larger the Kf, the more likely the complex will form Common Ion Equilibria The larger the Kf, the more likely the complex will form

Common Ion Equilibria Kf for [Ag(NH3)2]+1 = 1.7 x 107 Kf for [Ag(CN)2]-1 = 2.0 x 1020

Common Ion Equilibria CN- will replace NH3 in the complex with silver

Common Ion Equilibria Kf for [M(NH3)2]+2 = 1.7 x 1011 Kf for [M(CN)4]-2 = 2.0 x 1020

[Zn(NH3)2H2OF]+1 [Co(NH3)3ClFI]-1 Calculate: a) coordination # b) number of isomers c) oxidation # of metal [Zn(NH3)2H2OF]+1 [Co(NH3)3ClFI]-1