TY - JOUR
T1 - Efficient CO2 reduction MOFs derivatives transformation mechanism revealed by in-situ liquid phase TEM
AU - Xiao, Liangping
AU - Wang, Guanghua
AU - Huang, Xingchen
AU - Zhou, Shiyuan
AU - Zhou, Rusen
AU - Jiang, Youhong
AU - Liu, Sangui
AU - Li, Gen
AU - Zheng, Haimei
AU - Sun, Shi Gang
AU - Liao, Hong Gang
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/6/15
Y1 - 2022/6/15
N2 - Materials derived from MOFs have great potentials in energy conversion. However, the nanoscale transformation processes of MOFs derivatives remain unknown. Herein, by using in-situ liquid phase TEM, we directly visualize the MOFs etching processes. For the first time, unexpected nanobubble stability controlled transformation mechanism of ZIF-67 to porous or layered cobalt transition metal hydroxide (Co-TMH) is identified. Voids in MOFs migrate and merge to form nanobubbles due to structural collapse. Under slow diffusion conditions, nanobubbles move slowly and Co-TMH clusters generate on the nanobubble interface, further favoring the formation of internal nanocages and porous structures. On the other hand, a fast diffusion leads to rapid nanobubbles generation, aggregation and reshaping, inducing layered structure formation. Inspired by in-situ observation, we further synthesize porous Co-TMH at − 80 ℃ under inhibited diffusion conditions, which exhibits excellent catalytic performance on CO2 reduction reaction.
AB - Materials derived from MOFs have great potentials in energy conversion. However, the nanoscale transformation processes of MOFs derivatives remain unknown. Herein, by using in-situ liquid phase TEM, we directly visualize the MOFs etching processes. For the first time, unexpected nanobubble stability controlled transformation mechanism of ZIF-67 to porous or layered cobalt transition metal hydroxide (Co-TMH) is identified. Voids in MOFs migrate and merge to form nanobubbles due to structural collapse. Under slow diffusion conditions, nanobubbles move slowly and Co-TMH clusters generate on the nanobubble interface, further favoring the formation of internal nanocages and porous structures. On the other hand, a fast diffusion leads to rapid nanobubbles generation, aggregation and reshaping, inducing layered structure formation. Inspired by in-situ observation, we further synthesize porous Co-TMH at − 80 ℃ under inhibited diffusion conditions, which exhibits excellent catalytic performance on CO2 reduction reaction.
KW - CO reduction reaction
KW - MOFs-based derivative
KW - Transformation mechanism
KW - in-situ liquid phase TEM
UR - https://www.scopus.com/pages/publications/85124387780
U2 - 10.1016/j.apcatb.2022.121164
DO - 10.1016/j.apcatb.2022.121164
M3 - 文章
AN - SCOPUS:85124387780
SN - 0926-3373
VL - 307
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
M1 - 121164
ER -