Thermally and electronically triggered hydrogen shift within a CHCH2 species via surface-assisted hydrogen tunneling

Hydrogen shift along carbon skeletons plays a key role in isomerization and rearrangement reactions in organic synthesis and hydrocarbon catalysis. Here, we demonstrate precise control over hydrogen shift within a bistable CHCH2 species formed on a Cu(110) surface, using a single-molecule approach via scanning tunneling microscopy. Triggered either thermally or electronically, the hydrogen shift exhibits an apparent activation energy of ≈0.2 eV, which is significantly lower than that of its classical analog of 1.3 eV. In contrast, no corresponding shift is observed in the deuterated CDCD2 species, revealing a dominant quantum effect behind. This isotopic phenomenon is corroborated by deep-learning-assisted path-integral Monte Carlo simulations which identify a surface-assisted tunneling pathway. Our nanotechnological strategy does lower the activation energy barrier, enabling controllable hydrogen shift for precise molecular synthesis under milder conditions. Hydrogen shift along carbon skeletons plays a key role in isomerization and rearrangement reactions in organic synthesis and hydrocarbon catalysis, yet quantitative insights are lacking. Here, the authors observe the hydrogen shift in a pure hydrocarbon system, revealing a metal-assisted hydrogen tunneling process.

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Journal
Nature Communications
Published
2026-09-04
DOI
https://doi.org/10.1038/s41467-026-77337-y
Primary Topic
Crystallography and molecular interactions
Type
article
Field-Weighted Citation Impact
0.00

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article

Thermally and electronically triggered hydrogen shift within a CHCH2 species via surface-assisted hydrogen tunneling

Zhichao Huang, Zhantao Peng, Shenzhen Xu, Xiong Zhou et al.
Nature Communications
Crystallography and molecular interactions
article

Thermally and electronically triggered hydrogen shift within a CHCH2 species via surface-assisted hydrogen tunneling

Zhichao Huang, Zhantao Peng, Shenzhen Xu, Xiong Zhou, Kai Wu, Weijun Guo, Xiaodong Wen, Pengju Ren, Wentao Li, Yongfeng Wang, Bai-Qi Jin, Yongwang Li, Bin Di, Zhen Xu, Jinliang Pan, Qiwei Chen, Zhen Zhu
article en

Abstract

Hydrogen shift along carbon skeletons plays a key role in isomerization and rearrangement reactions in organic synthesis and hydrocarbon catalysis. Here, we demonstrate precise control over hydrogen shift within a bistable CHCH2 species formed on a Cu(110) surface, using a single-molecule approach via scanning tunneling microscopy. Triggered either thermally or electronically, the hydrogen shift exhibits an apparent activation energy of ≈0.2 eV, which is significantly lower than that of its classical analog of 1.3 eV. In contrast, no corresponding shift is observed in the deuterated CDCD2 species, revealing a dominant quantum effect behind. This isotopic phenomenon is corroborated by deep-learning-assisted path-integral Monte Carlo simulations which identify a surface-assisted tunneling pathway. Our nanotechnological strategy does lower the activation energy barrier, enabling controllable hydrogen shift for precise molecular synthesis under milder conditions. Hydrogen shift along carbon skeletons plays a key role in isomerization and rearrangement reactions in organic synthesis and hydrocarbon catalysis, yet quantitative insights are lacking. Here, the authors observe the hydrogen shift in a pure hydrocarbon system, revealing a metal-assisted hydrogen tunneling process.

Nature Communications
Peking University (CN), National Energy Research Center (JO), Beijing National Laboratory for Molecular Sciences (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 12%
Crystallography and molecular interactions
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