机构地区:[1]College of Bioresources Chemical and Materials Engineering,Shaanxi Provincial Key Laboratory of Papermaking Technology and Specialty Paper Development,Key Laboratory of Paper Based Functional Materials of China National Light Industry,National Demonstration Center for Experimental Light Chemistry Engineering Education,Shaanxi University of Science and Technology,Xi’an,China [2]Technological Institute of Materials&Energy Science(TIMES),Xi’an Key Laboratory of Advanced Photo-Electronics Materials and Energy Conversion Device,School of Electronic Information,Xijing University,Xi’an,China [3]“Petru Poni”Institute of Macromolecular Chemistry of Romanian Academy,Iasi,Romania
出 处:《SusMat》2024年第6期65-84,共20页可持续发展材料(英文)
基 金:National Natural Science Foundation of China,Grant/Award Numbers:22378247,22308283;International Joint Research Center for Biomass Chemistry and Materials,Shaanxi International Science and Technology Cooperation Base,Grant/Award Number:2018GHJD-19;Shaanxi Qin Chuangyuan Project of“Scientist+Engineer”team construction,Grant/Award Number:2022KXJ-135;Shaanxi Qin Chuangyuan Project of Quoting high-level innovative and entrepreneurial talent projects,Grant/Award Number:QCYRCXM-2022-135。
摘 要:Ionic conductive hydrogels(ICHs)prepared from natural bioresources are promising candidates for constructing flexible electronics for both commercialization and environmental sustainability due to their intrinsic characteristics.However,simultaneous realization of high stiffness,toughness,conductivity,and multifunctionality while ensuring processing simplicity is extremely challenging.Here,a poly(ionic liquid)(PIL)-macromolecule functionalization strategy within a NaOH/urea system is proposed to construct high-performance and versatile polysaccharide-based ICHs(e.g.,cellulosic ICHs).In this strategy,the elaborately designed“soft”(PIL chains)and“hard”(cellulose backbone)structures as well as the dynamic covalent and noncovalent bonds of the cross-linked networks endow the hydrogel with high mechanical strength(9.46±0.23 MPa compressive modulus),exceptional stretchability(214.3%),and toughness(3.64±0.12 MJ m^(−3)).Ingeniously,due to the inherent conductivity,design flexibility,and functional compatibility of the PILs,the hydrogels exhibit high conductivity(6.54±0.17 mS cm^(−1)),self-healing ability(94.5%±2.0%efficiency),antibacterial properties,freezing resistance,water retention,and recyclability.Interestingly,this strategy is extended to fabricate diverse hydrogels from various polysaccharides,including agar,alginate,hyaluronic acid,and guar gum.In addition,multimodal sensing(strain,temperature,and humidity)is realized based on the stimulus-responsive characteristics of the hydrogels.This strategy opens new perspectives for the design of biomass-based hydrogels and beyond.
关 键 词:bioresources cellulose conductive hydrogels multiple functions poly(ionic liquids) SENSORS
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...
正在载入数据...