(1)∵数列{log2(an-1)}(n∈N*)为等差数列,a1=3,a3=9,
∴log2(a1-1)=log22=1,
log2(a3-1)=log28=3,
∴{log2(an-1)}是首项为1,公差为1的等差数列,
∴log2(an-1)=1+n-1=n,
∴an?1=2n,
∴an=2n+1.
(2)∵an=2n+1,
∴
=1
an+1?an
=1
2n+1?2n
,1 2n
∴Sn=
+1
a2?a1
+…+1
a3?a2
1
an+1?an
=
+1 2
+…+1 22
1 2n
=
(1?1 2
)1 2n 1?
1 2
=1-
.1 2n
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