TY - JOUR
T1 - Controllable Crystallization of Two-Dimensional Bi Nanocrystals with Morphology-Boosted CO2 Electroreduction in Wide pH Environments
AU - Chen, Li Wei
AU - Hao, Yu Chen
AU - Li, Jiani
AU - Hu, Linyu
AU - Zuo, Xintao
AU - Dai, Chunlong
AU - Yu, Zi Long
AU - Huang, Hui Zi
AU - Tian, Wenjing
AU - Liu, Di
AU - Chang, Xiaoxue
AU - Li, Pengfei
AU - Shao, Ruiwen
AU - Wang, Bo
AU - Yin, An Xiang
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/8/23
Y1 - 2023/8/23
N2 - Two-dimensional low-melting-point (LMP) metal nanocrystals are attracting increasing attention with broad and irreplaceable applications due to their unique surface and topological structures. However, the chemical synthesis, especially the fine control over the nucleation (reduction) and growth (crystallization), of such LMP metal nanocrystals remains elusive as limited by the challenges of low standard redox potential, low melting point, poor crystalline symmetry, etc. Here, a controllable reduction-melting-crystallization (RMC) protocol to synthesize free-standing and surfactant-free bismuth nanocrystals with tunable dimensions, morphologies, and surface structures is presented. Especially, ultrathin bismuth nanosheets with flat or jagged surfaces/edges can be prepared with high selectivity. The jagged bismuth nanosheets, with abundant surface steps and defects, exhibit boosted electrocatalytic CO2 reduction performances in acidic, neutral, and alkaline aqueous solutions, achieving the maximum selectivity of near unity at the current density of 210 mA cm–2 for formate evolution under ambient conditions. This work creates the RMC pathway for the synthesis of free-standing two-dimensional LMP metal nanomaterials and may find broader applicability in more interdisciplinary applications.
AB - Two-dimensional low-melting-point (LMP) metal nanocrystals are attracting increasing attention with broad and irreplaceable applications due to their unique surface and topological structures. However, the chemical synthesis, especially the fine control over the nucleation (reduction) and growth (crystallization), of such LMP metal nanocrystals remains elusive as limited by the challenges of low standard redox potential, low melting point, poor crystalline symmetry, etc. Here, a controllable reduction-melting-crystallization (RMC) protocol to synthesize free-standing and surfactant-free bismuth nanocrystals with tunable dimensions, morphologies, and surface structures is presented. Especially, ultrathin bismuth nanosheets with flat or jagged surfaces/edges can be prepared with high selectivity. The jagged bismuth nanosheets, with abundant surface steps and defects, exhibit boosted electrocatalytic CO2 reduction performances in acidic, neutral, and alkaline aqueous solutions, achieving the maximum selectivity of near unity at the current density of 210 mA cm–2 for formate evolution under ambient conditions. This work creates the RMC pathway for the synthesis of free-standing two-dimensional LMP metal nanomaterials and may find broader applicability in more interdisciplinary applications.
KW - bismuth nanosheets
KW - carbon dioxide reduction reaction
KW - low-melting-point metals
KW - stepped edges
KW - two-dimensional materials
UR - http://www.scopus.com/inward/record.url?scp=85153535689&partnerID=8YFLogxK
U2 - 10.1002/smll.202301639
DO - 10.1002/smll.202301639
M3 - Article
C2 - 37093197
AN - SCOPUS:85153535689
SN - 1613-6810
VL - 19
JO - Small
JF - Small
IS - 34
M1 - 2301639
ER -