Interfacial Engineering
of Semicoherent Interface
at Purified CsPbBr<sub>3</sub> Quantum Dots/2D-PbSe for Optimal CO<sub>2</sub> Photoreduction Performance
posted on 2022-09-23, 20:29authored byGaotian Zhang, Xi Ke, Xiao Liu, Haijun Liao, Weizhe Wang, He Yu, Kunqiang Wang, Shuhui Yang, Chen Tu, Huaimin Gu, Dongxiang Luo, Le Huang, Menglong Zhang
Heterogeneous photocatalysts are extensively used to
achieve interfacial
electric fields for acceleration of oriented charge carrier transport
and further promotion of photocatalytic redox reactions. Unfortunately,
the incoherent interfaces are almost present in the heterostructures
owing to large lattice mismatch accompanied by the interfacial defects
and high density of gap states, acting as high energy barriers for
charge migration. In this work, we report the atomic engineering of
CsPbBr<sub>3</sub>/PbSe heterogeneous interfaces and conversion from
incoherent features to semicoherent characters via methyl acetate
(MeOAc) purification of CsPbBr<sub>3</sub> quantum dots (QDs) before
composited with two-dimensional (2D)-PbSe, which is confirmed by high-resolution
transmission electron microscopy. The photocatalytic performances
and theoretical calculations indicate that semicoherent interfaces
are favorable for improving the activity and reactivity of the heterostructure,
triggering 3 times enhanced photocatalytic CO<sub>2</sub> reduction
rate with 91% selectivity and satisfactory stability. This study proposes
a facile method for photocatalytic heterojunctions to transform incoherent
interfaces to photocatalytically beneficial semicoherent boundaries,
accompanying with a systematic analysis of the consequent chemical
dynamics to demonstrate the mechanism of the semicoherent interface
for supporting photocatalysis. The understandings gained from this
work are valuable for rational interfacial lattice engineering of
heterogeneous photocatalysts for efficient solar fuel production.