TY - JOUR
T1 - Activating a Semiconductor–Liquid Junction via Laser-Derived Dual Interfacial Layers for Boosted Photoelectrochemical Water Splitting
AU - Jian, Jie
AU - Wang, Shiyuan
AU - Ye, Qian
AU - Li, Fan
AU - Su, Guirong
AU - Liu, Wei
AU - Qu, Changzhen
AU - Liu, Feng
AU - Li, Can
AU - Jia, Lichao
AU - Novikov, Andrei A.
AU - Vinokurov, Vladimir A.
AU - Harvey, Daniel H.S.
AU - Shchukin, Dmitry
AU - Friedrich, Dennis
AU - van de Krol, Roel
AU - Wang, Hongqiang
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/5/12
Y1 - 2022/5/12
N2 - The semiconductor–liquid junction (SCLJ), the dominant place in photoelectrochemical (PEC) catalysis, determines the interfacial activity and stability of photoelectrodes, whcih directly affects the viability of PEC hydrogen generation. Though efforts dedicated in past decades, a challenge remains regarding creating a synchronously active and stable SCLJ, owing to the technical hurdles of simultaneously overlaying the two advantages. The present work demonstrates that creating an SCLJ with a unique configuration of the dual interfacial layers can yield BiVO4 photoanodes with synchronously boosted photoelectrochemical activity and operational stability, with values located at the top in the records of such photoelectrodes. The bespoke dual interfacial layers, accessed via grafting laser-generated carbon dots with phenolic hydroxyl groups (LGCDs-PHGs), are experimentally verified effective, not only in generating the uniform layer of LGCDs with covalent anchoring for inhibited photocorrosion, but also in activating, respectively, the charge separation and transfer in each layer for boosted charge-carrier kinetics, resulting in FeNiOOH–LGCDs-PHGs–MBVO photoanodes with a dual configuration with the photocurrent density of 6.08 mA cm−2 @ 1.23 VRHE, and operational stability up to 120 h @ 1.23 VRHE. Further work exploring LGCDs-PHGs from catecholic molecules warrants the proposed strategy as being a universal alternative for addressing the interfacial charge-carrier kinetics and operational stability of semiconductor photoelectrodes.
AB - The semiconductor–liquid junction (SCLJ), the dominant place in photoelectrochemical (PEC) catalysis, determines the interfacial activity and stability of photoelectrodes, whcih directly affects the viability of PEC hydrogen generation. Though efforts dedicated in past decades, a challenge remains regarding creating a synchronously active and stable SCLJ, owing to the technical hurdles of simultaneously overlaying the two advantages. The present work demonstrates that creating an SCLJ with a unique configuration of the dual interfacial layers can yield BiVO4 photoanodes with synchronously boosted photoelectrochemical activity and operational stability, with values located at the top in the records of such photoelectrodes. The bespoke dual interfacial layers, accessed via grafting laser-generated carbon dots with phenolic hydroxyl groups (LGCDs-PHGs), are experimentally verified effective, not only in generating the uniform layer of LGCDs with covalent anchoring for inhibited photocorrosion, but also in activating, respectively, the charge separation and transfer in each layer for boosted charge-carrier kinetics, resulting in FeNiOOH–LGCDs-PHGs–MBVO photoanodes with a dual configuration with the photocurrent density of 6.08 mA cm−2 @ 1.23 VRHE, and operational stability up to 120 h @ 1.23 VRHE. Further work exploring LGCDs-PHGs from catecholic molecules warrants the proposed strategy as being a universal alternative for addressing the interfacial charge-carrier kinetics and operational stability of semiconductor photoelectrodes.
KW - BiVO photoanodes
KW - functional carbon dots
KW - PEC water splitting
KW - pulsed laser irradiation
KW - semiconductor–liquid junction engineering
UR - http://www.scopus.com/inward/record.url?scp=85127373144&partnerID=8YFLogxK
U2 - 10.1002/adma.202201140
DO - 10.1002/adma.202201140
M3 - 文章
C2 - 35244311
AN - SCOPUS:85127373144
SN - 0935-9648
VL - 34
JO - Advanced Materials
JF - Advanced Materials
IS - 19
M1 - 2201140
ER -