Please use this identifier to cite or link to this item: http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/10453
Title: Molecular-Scale Geometry Switching for Proton-Driven Macroscopic Actuation
Authors: PARMAR, MUSKAN
DARGILY, NEETHU CHRISTUDAS
NAYAK, BHOJKUMAR
PANDEY, VINAY
Kotresh, Harish Makri Nimbegondi
THOTIYL, MUSTHAFA OTTAKAM
Dept. of Chemistry
Keywords: Electric double layer
Ligand isomerization
Mechanical actuation
Organometallic complexes
Proton charge assembly
2025-OCT-WEEK3
TOC-OCT-2025
2025
Issue Date: Oct-2025
Publisher: Wiley
Citation: Advanced Functional Materials
Abstract: A conceptual framework for mechanical actuation is presented, rooted in molecular-level structural switching via ligand isomerization around a central metal ion. During the α to β ligand geometric switching, intramolecular hydrogen bonding, a key attractive interaction, is dismantled, dramatically enhancing proton charge localization and its spatial organization. This structural realignment in the β isomer results in a threefold increase in anion population at the electric double layer, unleashing a fundamentally unique proton-driven mechanical response. Unlike conventional methods, this mechanism offers an unexplored dimension, translating precise molecular reconfigurations into macroscopic motion. This work highlights how molecular-level structural switching can serve as a design principle for creating highly responsive, adaptable soft actuators, paving the way for advances in soft robotics, molecular machinery, and dynamic materials.
URI: https://doi.org/10.1002/adfm.202515664
http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/10453
ISSN: 1616-3028
1616-301X
Appears in Collections:JOURNAL ARTICLES

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