问题
解答题
已知数列{an}的前n项和为Sn,且a1=4,Sn=nan+2-
(I)求数列{an}的通项公式; (II) 已知bn>an,(n≥2,n∈N*),求证:(1+
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答案
(I)当n≥3时,由sn=nan+2-
,n(n-1) 2
Sn-1=(n-1)an-1+2-
,(n-1)(n-2) 2
可得an=nan-(n-1)an-1-
×2,n-1 2
故an-an-1=1(n≥3,n∈N+).
所以an=4 n=1 n+1 n≥2
(II)设f(x)=ln(1+x)-x,则f'(x)=
-1=1 1+x
<0,-x 1+x
故f(x)在(0,+∞)上单调递减,∴f(x)<f(0),即ln(1+x)<x
∵n≥2时,
<1 bn
=1 an
,ln(1+1 n+1
)<1 bn•bn+1
<1 bn•bn+1
=1 (n+1)(n+2)
-1 n+1
,1 n+2
∴ln(1+
)+ln(1+1 b2•b3
)+…+ln(1+1 b3• b4
)<1 bn•bn+1
-1 3
+1 4
-1 4
+…+1 5
-1 n+1
=1 n+2
-1 3
<1 n+2
.1 3
∴(1+
)(1+1 b2b3
)(1+1 b3b4
)…(1+1 b4b5
)<1 bnbn+1
.3 e