DOI: 10.1021/acs.biomac.6c01861 ISSN: 1525-7797

Ionic Liquid Microemulsion-Templated Bacterial Cellulose−Poly(ionic liquid)/Carbon Black Membranes with Coupled Porous and Conductive Networks for Stable Humidity Sensing

Na Gao, Shengxian Yang, Yanbin Xu, Shengze Zhang, Guowei Weng, Shili Liu, Jian Xue, Aili Wang

Abstract

Humidity sensing membranes combining high sensitivity, mechanical robustness, and long-term stability remain challenging to fabricate via simple, scalable routes. Using a surfactant-free ionic liquid microemulsion and nanofibrillar bacterial cellulose, we fabricated a short-range ordered bicontinuous porous composite membrane in one step. In situ polymerized poly(ionic liquid) forms strong hydrogen-bonded interfaces with cellulose, while microemulsion templating generates interconnected pores. Carbon black (CB) and isopropyl alcohol (i-PA) synergistically regulate the membrane structure and properties. Increasing the CB content enhances mechanical strength and lowers electrical resistance through conductive percolation, whereas i-PA controls fracture morphology and porosity. The optimized formulation (5 wt % CB, 37.5% excess i-PA) achieves a tensile strength of 2.66 MPa and a relative resistance response of 87% at 95% relative humidity, with negligible performance degradation after 1000 tensile cycles. These findings establish ionic liquid microemulsion templating as a scalable route to durable, porous iontronic membranes for high-performance humidity monitoring.