(1)当n=1时,a1=s1=
1
4
a 21
+
1
2
a1-
3
4
,解出a1=3,
又4Sn=an2+2an-3 ①
当n≥2时,4sn-1=
a 2n-1
+2an-1-3 ②…(4分)
①-②:4an=
a 2n
-
a 2n-1
+2(an-an-1),即
a 2n
-
a 2n-1
-2(an+an-1)=0,
∴(
a n
+an-1)(an-an-1-2)=0,
∵an+an-1>0,∴an-an-1=2(n≥2),…(6分)
∴数列{an}是以3为首项,2为公差的等差数列,
∴an=3+2(n-1)=2n+1. …(7分)
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