5.3 Solutions 301
whereEis in eV,E=
(
0. 286
λ) 2
=
(
0. 286
1. 66
) 2
= 0 .0297 eV.5.7 (a)r=a/ 2
(b)r=√
2 a/ 4
(c)r=√
3 a/ 4
(d)√
3 a/ 85.3.2 Crystal Properties ................................
5.8 Consider an infinite line of ions of alternating sign, as in Fig. 5.2. Let a nega-
tive ion be a reference ion and letabe the distance between adjacent ions. By
definition the Madelung Constant∝is given by:Fig. 5.2Infinite line of ions
of alternating sign
α
a=
∑
j(±)
rj(1)
whererjis the distance of thejth ion from the reference ion andais the
nearest neighbor distance. Thus:α
a= 2
[
1
a−
1
2 a+
1
3 a−
1
4 a+···
]
Or,α= 2[
1 −
1
2
+
1
3
−
1
4
+···
]
(2)
The factor 2 occurs because there are two ions, one to the right and one to
the left, at equal distancesrj. We sum the series by the expansion:ln(1+x)=x−x^2
2+
x^3
3−
x^4
4+··· (3)
Puttingx=1, the RHS in (3) is identified as In 2. Thus∝=2ln2.