Two‐Dimensional Ultrathin Graphic Carbon Nitrides with Extended π‐Conjugation as Extraordinary Efficient Hydrogen Evolution Photocatalyst
Pengzhan Sha, Yang You, Donglian Wen, Zihao Wu, Qingfeng Wang, Donglei Bu, Shaoming Huang
Abstract
Abstract Construction of 2D graphic carbon nitrides (g‐CN x ) with wide visible light adsorption range and high charge separation efficiency concurrently is of great urgent demand and still very challenging for developing highly efficient photocatalysts for hydrogen evolution. To achieve this goal, a two‐step pyrolytic strategy has been applied here to create ultrathin 2D g‐CN x with extended the π‐conjugation. It is experimentally proven that the extension of π‐conjugation in g‐CN x is not only beneficial to narrowing the bandgap, but also improving the charge separation efficiency of the g‐CN x . As an integral result, extraordinary apparent quantum efficiencies (AQEs) of 57.3% and 7.0% at short (380 nm) and long (520 nm) wavelength, respectively, are achieved. The formation process of the extended π‐conjugated structures in the ultrathin 2D g‐CN x has been investigated using XRD, FT‐IR, Raman, XPS, and EPR. Additionally, it has been illustrated that the two‐step pyrolytic strategy is critical for creating ultrathin g‐CN x nanosheets with extended π‐conjugation by control experiments. This work shows a feasible and effective strategy to simultaneously expand the light adsorption range, enhance charge carrier mobility and depress electron‐hole recombination of g‐CN x for high‐efficient photocatalytic hydrogen evolution.