| Literature DB >> 34050154 |
Junfang Zhang1,2, Yajun Zou1, Stephan Eickelmann1, Christian Njel3, Tobias Heil1, Sebastian Ronneberger1, Volker Strauss1, Peter H Seeberger1,2, Aleksandr Savateev1, Felix F Loeffler4.
Abstract
Fabrication of hybrid photoelectrodes on a subsecond timescale with low energy consumption and possessing high photocurrent densities remains a centerpiece for successful implementation of photoelectrocatalytic synthesis of fuels and value-added chemicals. Here, we introduce a laser-driven technology to print sensitizers with desired morphologies and layer thickness onto different substrates, such as glass, carbon, or carbon nitride (CN). The specially designed process uses a thin polymer reactor impregnated with transition metal salts, confining the growth of transition metal oxide (TMO) nanostructures on the interface in milliseconds, while their morphology can be tuned by the laser. Multiple nano-p-n junctions at the interface increase the electron/hole lifetime by efficient charge trapping. A hybrid copper oxide/CN photoanode with optimal architecture reaches 10 times higher photocurrents than the pristine CN photoanode. This technology provides a modular approach to build a library of TMO-based composite films, enabling the creation of materials for diverse applications.Entities:
Year: 2021 PMID: 34050154 DOI: 10.1038/s41467-021-23367-7
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919