Interfacial Si–O–Zn Coordination in Chitosan Hydrogel Electrolytes Regulating (002)-Oriented Zn Deposition for Flexible Energy Storage and Sensing

Abstract Sustainable wearable electronics demand flexible energy-storage and sensing devices made by greener, low-impact routes. Aqueous zinc-based hydrogel electrolytes are attractive here, but their use is limited by uncontrolled zinc dendrite growth and by the difficulty of combining fast Zn2+ transport with controlled interfacial deposition. Most hydrogels resist dendrites only through passive physical confinement, without actively governing interfacial zinc deposition. Herein, using chitosan, a renewable polysaccharide obtained from chitin-rich seafood waste, we construct an interfacial Si–O–Zn coordination motif within a hydrogel electrolyte through a mild, all-aqueous, one-step in situ polymerization that requires no separate activation step. Chitosan and acrylamide form the matrix, zinc trifluoromethanesulfonate (Zn(OTf)2) is the zinc source, and nanosilicon acts as a functional filler. Chitosan bridges the organic and inorganic domains through its -NH2/-OH groups, while free Zn2+ ions coordinate with surface silanols to form interfacial Si–O–Zn coordination interactions. The optimized CAA-6-Si(3:1) electrolyte delivers a high ionic conductivity (36.04 ± 1.71 mS cm–1), a wide electrochemical stability window (2.56 V), and a Zn2+ transference number of 0.583. Spectroscopic and structural analyses reveal that the interfacial Si–O–Zn sites actively steer Zn2+ toward the low-energy (002) plane, suppressing dendrites rather than merely blocking them; accordingly, Zn || Zn symmetric cells cycle stably for 1820 h at 2 mA cm–2 and 535 h at 5 mA cm–2. The same electrolyte integrates readily into multiple flexible devices: zinc-ion hybrid capacitors retain 90.4% capacity after 50,000 cycles at 10 A g–1, with stable performance under bending, and strain sensors (gauge factor = 1.54) reliably monitor physiological signals. By coupling interfacial coordination chemistry to zinc deposition, this chitosan hydrogel electrolyte combines fast Zn2+ transport with (002)-oriented, dendrite-suppressed plating. Made from a renewable feedstock through a mild, low-impact process, it offers a sustainable route to flexible energy-storage and sensing devices.

Authors

Institutions

Publication Details

Journal
ACS Sustainable Chemistry & Engineering
Published
2026-10-07
DOI
https://doi.org/10.1021/acssuschemeng.6c07104
Primary Topic
Advanced battery technologies research
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

Interfacial Si–O–Zn Coordination in Chitosan Hydrogel Electrolytes Regulating (002)-Oriented Zn Deposition for Flexible Energy Storage and Sensing

Songshan Zeng, 童明德, Xiaoyuan Yu, Qingkun Tang et al.
ACS Sustainable Chemistry & Engineering
Advanced battery technologies research
article

Interfacial Si–O–Zn Coordination in Chitosan Hydrogel Electrolytes Regulating (002)-Oriented Zn Deposition for Flexible Energy Storage and Sensing

Songshan Zeng, 童明德, Xiaoyuan Yu, Qingkun Tang, Shuting Liu, Zuyun Chen, Xinyan Lv
article en

Abstract

Abstract Sustainable wearable electronics demand flexible energy-storage and sensing devices made by greener, low-impact routes. Aqueous zinc-based hydrogel electrolytes are attractive here, but their use is limited by uncontrolled zinc dendrite growth and by the difficulty of combining fast Zn2+ transport with controlled interfacial deposition. Most hydrogels resist dendrites only through passive physical confinement, without actively governing interfacial zinc deposition. Herein, using chitosan, a renewable polysaccharide obtained from chitin-rich seafood waste, we construct an interfacial Si–O–Zn coordination motif within a hydrogel electrolyte through a mild, all-aqueous, one-step in situ polymerization that requires no separate activation step. Chitosan and acrylamide form the matrix, zinc trifluoromethanesulfonate (Zn(OTf)2) is the zinc source, and nanosilicon acts as a functional filler. Chitosan bridges the organic and inorganic domains through its -NH2/-OH groups, while free Zn2+ ions coordinate with surface silanols to form interfacial Si–O–Zn coordination interactions. The optimized CAA-6-Si(3:1) electrolyte delivers a high ionic conductivity (36.04 ± 1.71 mS cm–1), a wide electrochemical stability window (2.56 V), and a Zn2+ transference number of 0.583. Spectroscopic and structural analyses reveal that the interfacial Si–O–Zn sites actively steer Zn2+ toward the low-energy (002) plane, suppressing dendrites rather than merely blocking them; accordingly, Zn || Zn symmetric cells cycle stably for 1820 h at 2 mA cm–2 and 535 h at 5 mA cm–2. The same electrolyte integrates readily into multiple flexible devices: zinc-ion hybrid capacitors retain 90.4% capacity after 50,000 cycles at 10 A g–1, with stable performance under bending, and strain sensors (gauge factor = 1.54) reliably monitor physiological signals. By coupling interfacial coordination chemistry to zinc deposition, this chitosan hydrogel electrolyte combines fast Zn2+ transport with (002)-oriented, dendrite-suppressed plating. Made from a renewable feedstock through a mild, low-impact process, it offers a sustainable route to flexible energy-storage and sensing devices.

ACS Sustainable Chemistry & Engineering
South China Agricultural University (CN), Macau University of Science and Technology (MO)
Openalex Percentile: Top 22%
Advanced battery technologies research
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.