How to prove the statement:
Assuming the continuum hypothesis, the product of any uncountable family of $T_1$ spaces, each having more than one point, is never sequentially compact.
The statement appears in General Topology by Stephen Willard, exercise 17G.6.
My attempt was along the lines of trying to use the sequential compactness (any sequence of points in the space has a convergent subsequence whose limit is in it) of the space defined to build a set that would violate the continuum hypothesis. But I could not find the right construct.
Best Answer
Here I show that $P:=\{0,1\}^{2^{\Bbb N}}$ is not sequentially compact, using a diagonalisation argument (this holds in plain ZFC, so "absolutely").
If CH holds and $I$ is uncountable and $X_i, i \in I$ is a family of $T_1$ spaces having more than one point, we have that $P$ is homeomorphic to a closed subspace of $\prod_{i \in I} X_i$. (CH is needed to get $|I| \ge \mathfrak{c}= |2^{\aleph_0}|$ from $I$ being merely uncountable) So if the latter were sequentially compact so would $P$ be, quod non.
FYI: there are models of ZFC where $[0,1]^{\aleph_1}$ is sequentially compact. See the Handbook of Set-theoretic Topology for more on this. This shows CH is really needed.
This is the essence of the argument.