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Cellulose Ionogels: Unraveling Structure-Property Relationships Through Multiscale In-Situ Characterization and
Jia Wei1,2,3, Ziyan He1, Jingtao Ruan1,3
1State Key Laboratory of Water Engineering Ecology and Environment in Arid Area, School of Eco-Environmental and Chemical Engineering, Xi'an University of Technology, Xi'an 710048, China.
Abstract:
Cellulose ionogels have emerged as promising functional soft materials for flexible electronics, energy storage, and biosensing owing to their inherent biocompatibility and unique ionic conductivity. However, establishing precise structure-property relationships remains a fundamental challenge due to the complex, non-equilibrium dynamic processes-such as transient solvation, competing hydrogen-bonding networks, and mesoscopic phase separation-that occur during dissolution and gelation. Traditional static and post-mortem characterizations fail to capture these spatiotemporally dynamic behaviors, creating a critical knowledge gap. To overcome this bottleneck, the integration of real-time in situ/operando characterization techniques with multiscale computational simulations has established a novel, synergistic paradigm. This review comprehensively synthesizes recent advances in decoding the multiscale architectures of cellulose ionogels. We systematically analyze how molecular-scale calculations and time-resolved vibrational/electronic spectroscopies reveal interfacial solvation mechanisms and dynamic bond cleavage/reconstruction. We further evaluate how mesoscopic scattering, nanomechanical mapping, and rheological tools resolve network topology and structural heterogeneity. By bridging these multiscale diagnostics with macroscopic transport and mechanics, the dynamic coupling/decoupling mechanisms governing ionic conductivity, mechanical toughness, and thermal stability are critically decoded. Finally, key technical bottlenecks and future trajectories-including physics-informed machine learning, operando multi-field coupling probes, and AI-driven inverse material design-are outlined, providing theoretical guidelines and technical blueprints for next-generation sustainable ionogels.
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