Chemistry 1000 Lecture 22: Group 14 and Boron. Marc R. Roussel

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Chemistry 1000 Lecture 22: Group 14 and Boron Marc R. Roussel

Group 14 In this group again, we see a full range of nonmetallic to metallic behavior: C is a nonmetal. Si and Ge are metalloids. Sn and Pb are metals. Carbon is the central element in most biomolecules. Also widely distributed as carbonate minerals (many of biological origin), coal, graphite and diamond. Also present in atmosphere as CO 2 (seasonally averaged current value of 392 ppm, rising by about 2 ppm/year) Si is the second most abundant element in the Earth s crust (after O), mostly present in nature as silicon oxide (sand and related materials), quartz and silicate minerals. Sn and Pb are fairly abundant metals. Principal ores: SnO 2, PbS, PbSO 4 and PbCO 3

Allotropes of carbon Most stable allotrope: graphite Moderately good electrical conductor, but its conductivity is anisotropic (different in different directions) in single crystals Diamond Insulator Hardest naturally occurring substance Metastable at normal pressures Fullerenes, carbon nanotubes

Graphite Graphite structure: stacked sheets + resonance structures Stacking:

Graphene Graphene is a single carbon sheet with the graphite structure. Originally made by Geim and Novoselov (Nobel Prize 2010) using very high-tech scientific equipment: adhesive tape! Graphene has very strange properties: Although it s only one atom thick, a sheet of graphene absorbs 2.3% of white light. Less resistive than silver (best metallic conductor at room temperature) About 200 times stronger than steel

Diamond Network solid made of four-coordinate tetrahedral carbons

Fullerenes Small carbon balls discovered in 1985 by Curl, Kroto and Smalley (Nobel Prize 1996) Many different fullerenes, of which the most common is C60 Made of hexagons and pentagons Lots of molecules in this family (C70, C 76, C 78,... ), including some smaller than C 60 Can put stuff inside the cavity to alter electrical or other material properties

Carbon nanotubes Essentially, a rolled-up graphite sheet http://upload.wikimedia.org/wikipedia/commons/5/ 53/Types_of_Carbon_Nanotubes.png Incredibly strong material Tensile strength over 50 times larger than that of high-carbon steel Can put things inside the nanotubes, including other nanotubes http: //www.nanotech-now.com/images/multiwall-large.jpg

Oxides of carbon There are two oxides of carbon, CO2 and CO. CO2 is obtained when carbon compounds are burned in an excess of oxygen. CO is an incomplete combustion product. As seen previously, CO2 is a Lewis acid. CO on the other hand is a Lewis base.

CO as a Lewis base Lewis diagram: C O + The negative (carbon) end is more strongly Lewis acidic. Carboxyhaemoglobin is formed in a Lewis acid-base reaction between CO and the Lewis acidic iron(ii) ion in haemoglobin. Image source: Wikimedia commons: http://en.wikipedia.org/wiki/file:carboxyhemoglobin_from_1aj9.png

Silicon dioxide Unlike CO2, SiO 2 (silicon dioxide, a.k.a. silica) is a network solid. There are many different arrangements (including amorphous forms). In each case, the basic building block is an Si coordinated to four oxygen atoms in a tetrahedral shape.

Silicon dioxide (continued) α-quartz http://webmineral.com/jpowd/jpx/jpowd.php?target_ file=quartz.jpx

Boron Relatively rare element Mostly found in nature as borate minerals (salts of oxoanions of boron) Very hard (between Al2 O 3 and diamond) Semiconductor Similar in chemical properties to Si (diagonal relationship): Under normal conditions, does not react with oxygen, water, acids or bases Applications of boron and its compounds: borosilicate glass (e.g. Pyrex) composite materials detergents and bleaches (borax: a mixture of Na2 B 4 O 7 and related compounds) transistors and microprocessors

Boron compounds Many boron compounds are electron deficient Lewis acids, e.g. BF 3. Boric acid, B(OH)3, is a Lewis acid (not a Brønsted oxoacid, and definitely not a Brønsted base): HO OH B O OH H HO OH B OH OH

Boranes Boranes are boron-hydrogen compounds. Simplest borane: diborane, B2 H 6 (BH 3 doesn t exist) Try to draw a Lewis diagram for diborane. Not enough electrons for conventional two-electron bonds Three centre-two electron B-H-B bridging bonds H H H B B H H H

Lots of other boranes, e.g. Pentaborane, B5 H 9 Decaborane, B10 H 14