问题
解答题
已知数列{bn}中,b1=
(Ⅰ)求证:an+1+2an+1=0; (Ⅱ) 求数列{an}的通项公式; (Ⅲ) 求证:(-1)b1+(-1)2b2+…+(-1)nbn<1(n∈N*) |
答案
证明:(Ⅰ)an+1=
=1 bn+1-2
=1
-2bn+2 bn
= -1+bn 2-bn
=-2an-1,移向整理得an+1+2an+1=02 2-bn
(Ⅱ)∵an+1=-2an-1∴an+1+
=-2 (an+1 3
)1 3
又 a1+
=-2 ≠0∴{an+1 3
}为等比数列1 3
∴an+
=(-2)n∴an=(-2)n-1 3 1 3
证明:(Ⅲ)bn=
+2=1 an
+2∴(-1)nbn=2•(-1)n+1 (-2)n- 1 3 1 2n-
•(-1)n1 3
①当n为奇数时(-1)nbn+(-1)n+1bn+1=
+1 2n+ 1 3
=1 2n+1- 1 3
<2n+2n+1 (2n+
)(2n+1-1 3
)1 3
=2n+2n+1 2n•2n+1
+1 2n 1 2n+1
(-1)b1+(-1)2b2+…+(-1)nbn<
+1 2
+…+1 22
+1 2n-2
-2+1 2n-1
<1 2n+ 1 3
-2+1 2 1- 1 2
=1 2n+ 1 3
-1<11 2n+ 1 3
②当n为偶数时,(-1)b1+(-1)2b2+…+(-1)nbn<
+1 2
+…+1 22
+1 2n-1
<1 2n
=11 2 1- 1 2
综上所述,(-1)b1+(-1)2b2+…+(-1)nbn<1