I have a very basic question about the exterior derivative of differential forms and de Rham complexes. It is very basic, I know that the exterior derivative satisfies $d^2=0$. Knowing that, how is a de Rham complex even possible ?
My definition of a de Rham complex is the following : Let $M$ be a manifold of dimension $n$, the de Rham complex is the following chain : $$ 0 \xrightarrow[]{d} \Omega ^{0}(M) \xrightarrow[]{d} \Omega ^{1}(M) \xrightarrow[]{d} ... \xrightarrow[]{d} \Omega ^{m}(M) \xrightarrow[]{d} 0 $$
My question : since $d^2 =0$, shouldn't we always have that $\Omega ^2 (M) = 0$ ?
Thank you very much for your help
$\Omega^2(M)$ is the space of all the differential $2$-forms on $M$. You have $d(\Omega^1(M))\subseteq\Omega^2(M)$ and $d^2(\Omega^0(M))\subseteq d(\Omega^1(M))\subseteq\Omega^2(M)$. As you said, $d^2(\Omega^0(M))=\{0\}$, but there's no reason why $d^2(\Omega^0(M))$ would be equal to $\Omega^2(M)$.