Electric-field control of hydrogen bonding via interfacial charge at atomic resolution

Fuente: arXiv
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Autori principali: Doudin, Nassar, Jiang, Jian, Tang, Chun, Zeng, Xiao Cheng, Hassan, Mohammed Th.
Natura: Preprint
Pubblicazione: 2026
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author Doudin, Nassar
Jiang, Jian
Tang, Chun
Zeng, Xiao Cheng
Hassan, Mohammed Th.
author_facet Doudin, Nassar
Jiang, Jian
Tang, Chun
Zeng, Xiao Cheng
Hassan, Mohammed Th.
contents Hydrogen-bond networks govern molecular structure and function across chemistry, biology and materials science, yet their deterministic control at the atomic scale remains a central challenge (1-9).Here, we directly visualize how an external electric field enables reversible control of a hydrogen-bond network in monolayer ice on graphite through interfacial charge redistribution. Low-temperature scanning tunnelling microscopy reveals a field-driven transition from a mobile, physisorbed, non-wetting water phase to an ordered hexagonal monolayer, enabling deterministic nucleation, growth and complete wetting on an otherwise inert surface. Systematic variation of the field induces continuous lattice strain coexisting with discrete conductance states, revealing coupled structural and electronic responses. Reversal of the field polarity drives collective dipolar inversion, enabling switching between symmetry-equivalent configurations without disrupting the lattice. Supported by first-principles theory and bias-dependent imaging, these effects arise from field-induced modification of the interfacial electronic structure rather than purely geometric or orientational effects. These results establish interfacial charge redistribution as a general mechanism for electrically programming hydrogen-bond networks, providing a route to control molecular organization, electronic properties and collective dipolar order at interfaces.
format Preprint
id arxiv_https___arxiv_org_abs_2604_25114
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Electric-field control of hydrogen bonding via interfacial charge at atomic resolution
Doudin, Nassar
Jiang, Jian
Tang, Chun
Zeng, Xiao Cheng
Hassan, Mohammed Th.
Materials Science
Soft Condensed Matter
Hydrogen-bond networks govern molecular structure and function across chemistry, biology and materials science, yet their deterministic control at the atomic scale remains a central challenge (1-9).Here, we directly visualize how an external electric field enables reversible control of a hydrogen-bond network in monolayer ice on graphite through interfacial charge redistribution. Low-temperature scanning tunnelling microscopy reveals a field-driven transition from a mobile, physisorbed, non-wetting water phase to an ordered hexagonal monolayer, enabling deterministic nucleation, growth and complete wetting on an otherwise inert surface. Systematic variation of the field induces continuous lattice strain coexisting with discrete conductance states, revealing coupled structural and electronic responses. Reversal of the field polarity drives collective dipolar inversion, enabling switching between symmetry-equivalent configurations without disrupting the lattice. Supported by first-principles theory and bias-dependent imaging, these effects arise from field-induced modification of the interfacial electronic structure rather than purely geometric or orientational effects. These results establish interfacial charge redistribution as a general mechanism for electrically programming hydrogen-bond networks, providing a route to control molecular organization, electronic properties and collective dipolar order at interfaces.
title Electric-field control of hydrogen bonding via interfacial charge at atomic resolution
topic Materials Science
Soft Condensed Matter
url https://arxiv.org/abs/2604.25114