TY - JOUR
T1 - Mixed ion/electron conduction engineering of Li+-intercalated CdPS3 for low-bias photoelectrochemical ammonia synthesis
AU - Li, He
AU - Mi, Weiming
AU - Wang, Xiaxin
AU - Zhao, Wenli
AU - Zou, Yuxiu
AU - Xia, Mengyang
AU - Teng, Wenkai
AU - Xiao, Hang
AU - Yang, Guidong
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/12/1
Y1 - 2026/12/1
N2 - Photoelectrochemical nitrate reduction reaction is a promising route for sustainable ammonia synthesis under ambient conditions. However, conventional semiconductor photocathodes are often limited by sluggish charge transport, severe electron-hole recombination, and inefficient interfacial electron transfer, especially under low applied bias. Herein, Li+ ions are introduced into layered CdPS3 crystals through an ion-intercalation strategy to construct a mixed ion/electron conductive photocathode, Cd0.89PS3Li0.11. Owing to the two-dimensional van der Waals structure of CdPS3, the intercalated Li+ ions can migrate within the interlayer space, providing an additional ionic transport pathway and facilitating charge compensation. As a result, the conduction behavior of CdPS3 is transformed from conventional photoelectron-dominated transport to mixed ion/electron conduction, which accelerates charge transfer and enhances photoelectrocatalytic nitrate reduction. The optimized Cd0.89PS3Li0.11 exhibits a high ionic conductivity of 2.8 × 10-3 S/cm and an electronic conductivity of 4.2 × 10-7 S/cm. Theoretical calculations further reveal that Li incorporation reduces the energy barrier of the N-O bond dissociation step, thereby promotes the efficient PEC ammonia synthesis. Consequently, Cd0.89PS3Li0.11 achieves an ammonia yield rate of 129.76 mmol g-1h-1 (64.88 μmol cm-2h-1) with a Faradaic efficiency of 65.63 % at a low bias of −0.3 V versus the reversible hydrogen electrode. This work highlights mixed ion/electron conduction engineering as an effective strategy for designing high-performance photoelectrodes for low-bias ammonia synthesis.
AB - Photoelectrochemical nitrate reduction reaction is a promising route for sustainable ammonia synthesis under ambient conditions. However, conventional semiconductor photocathodes are often limited by sluggish charge transport, severe electron-hole recombination, and inefficient interfacial electron transfer, especially under low applied bias. Herein, Li+ ions are introduced into layered CdPS3 crystals through an ion-intercalation strategy to construct a mixed ion/electron conductive photocathode, Cd0.89PS3Li0.11. Owing to the two-dimensional van der Waals structure of CdPS3, the intercalated Li+ ions can migrate within the interlayer space, providing an additional ionic transport pathway and facilitating charge compensation. As a result, the conduction behavior of CdPS3 is transformed from conventional photoelectron-dominated transport to mixed ion/electron conduction, which accelerates charge transfer and enhances photoelectrocatalytic nitrate reduction. The optimized Cd0.89PS3Li0.11 exhibits a high ionic conductivity of 2.8 × 10-3 S/cm and an electronic conductivity of 4.2 × 10-7 S/cm. Theoretical calculations further reveal that Li incorporation reduces the energy barrier of the N-O bond dissociation step, thereby promotes the efficient PEC ammonia synthesis. Consequently, Cd0.89PS3Li0.11 achieves an ammonia yield rate of 129.76 mmol g-1h-1 (64.88 μmol cm-2h-1) with a Faradaic efficiency of 65.63 % at a low bias of −0.3 V versus the reversible hydrogen electrode. This work highlights mixed ion/electron conduction engineering as an effective strategy for designing high-performance photoelectrodes for low-bias ammonia synthesis.
KW - Ammonia synthesis
KW - Mixed ion/electron conduction
KW - Photoelectrocatalyst
UR - https://www.scopus.com/pages/publications/105043607793
U2 - 10.1016/j.ces.2026.124582
DO - 10.1016/j.ces.2026.124582
M3 - 文章
AN - SCOPUS:105043607793
SN - 0009-2509
VL - 336
JO - Chemical Engineering Science
JF - Chemical Engineering Science
M1 - 124582
ER -