SAT Subject Test Chemistry,10 edition

N: 5    electrons 8 electrons

3   O: 18   electrons 24    electrons

24  electrons 32    electrons

(32 –   24) electrons   =   8   electrons   =   4   bonds

Place   N   at  the center:

(N  and O   both    have    a   formal  charge.)

They    cannot  be  reduced because the N   octet   cannot  be  expanded.   However,    since

resonance   will    be  present,    a   better  version might   be:

H 3 PO 4

has needs

3   H 3 electrons 3(2)  =   6   electrons

P 5 electrons 8 electrons   (at least)

4   O 24    electrons 32    electrons

32  electrons 46    electrons

(46 –   32) electrons   =   14  electrons   =   7   bonds   (at least)

Place   the P   at  the center, the four    oxygens around  it, and hydrogens   on  three   of  the

oxygens,    with    single  bonds   between them;   this    will    use all seven   bonds.

B.