已知在递增等差数列{an}中,a1=2,a1,a3,a7成等比数列,{bn}的前n项和为Sn,且Sn=2n+1-2.
(1)求数列{an}、{bn}的通项公式;
(2)设cn=abn,求数列{cn}的前n项和Tn.
已知在递增等差数列{an}中,a1=2,a1,a3,a7成等比数列,{bn}的前n项和为Sn,且Sn=2n+1-2.
(1)求数列{an}、{bn}的通项公式;
(2)设cn=abn,求数列{cn}的前n项和Tn.
解析: (1)∵a1,a3,a7成等比数列,∴a
=a1·a7,
设等差数列{an}的公差为d,则(2+2d)2=2(2+6d),d>0,
∴d=1,an=n+1.
又Sn=2n+1-2,b1=S1=2,当n≥2时,bn=Sn-Sn-1=2n+1-2-2n+2=2n,经检验,n=1适合此式,
∴bn=2n.
(2)∵cn=abn=2n+1,
∴Tn=(2+1)+(22+1)+…+(2n+1)
=(2+22+…+2n)+n
=2n+1-2+n.