Research progress of leather collagen in flexible intelligent wearable field

被引:0
|
作者
Li N. [1 ,2 ,3 ]
Gao D. [1 ,2 ,3 ]
Lyu B. [1 ,2 ,3 ]
Tang L. [1 ,2 ,3 ]
Chen K. [1 ,2 ,3 ]
Zheng C. [1 ,2 ,3 ]
Ma J. [1 ,2 ,3 ]
机构
[1] College of Bioresources Chemistry and Materials Engineering, Shaanxi University of Science and Technology, Shaanxi, Xi'an
[2] National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi University of Science and Technology, Shaanxi, Xi'an
[3] Xi'an Key Laboratory of Green Chemicals and Functional Materials, Shaanxi, Xi'an
来源
Huagong Jinzhan/Chemical Industry and Engineering Progress | 2024年 / 43卷 / 05期
关键词
biomaterials; energy conversion; energy harvesting; flexible intelligent wearable; leather collagen; modified;
D O I
10.16085/j.issn.1000-6613.2023-2119
中图分类号
学科分类号
摘要
Leather collagen is a kind of natural biomass material derived from animal skin. The advantages of good biocompatibility, degradability, low antigenicity and easy functionalization make the leather collagen showing great application potential in flexible intelligent wearable fields such as flexible sensing, electromagnetic shielding, human thermal management and energy storage. However, some inherent shortcomings, such as poor thermal stability, low mechanical strength and easy to mildew and insufficient functionality, limite the application of leather collagen in the field of flexible intelligent wearable. In this review, the multilevel structure and performance advantages of leather collagen were briefly introduced. Different modification methods of collagen were discussed, including physical crosslinking, chemical crosslinking and blending modification. In addition, this review paid more attention to the research progress of leather collagen as flexible wearable materials in flexible sensing, electromagnetic shielding, human thermal management and supercapacitors. Finally, the development trend of leather collagen in the field of flexible wearable electronics was forecasted, and it was pointed out that the development of multi-functional integrated leather collagen flexible wearable electronic materials with extreme environmental stability and the realization of on-demand customization of flexible intelligent wearable materials based on leather collagen would be the focus of further research. © 2024 Chemical Industry Press Co., Ltd.. All rights reserved.
引用
收藏
页码:2645 / 2660
页数:15
相关论文
共 137 条
  • [1] FAN Xin, KE Tao, GU Haibin, Multifunctional, ultra-tough organohydrogel E-skin reinforced by hierarchical goatskin fibers skeleton for energy harvesting and self-powered monitoring, Advanced Functional Materials, 33, 42, (2023)
  • [2] KENNEDY L J, RATNAJI T, KONIKKARA N, Et al., Value added porous carbon from leather wastes as potential supercapacitor electrode using neutral electrolyte, Journal of Cleaner Production, 197, pp. 930-936, (2018)
  • [3] GAO Dangge, GUO Shihao, ZHOU Yingying, Et al., Absorption-dominant, low-reflection multifunctional electromagnetic shielding material derived from hydrolysate of waste leather scraps, ACS Applied Materials & Interfaces, 14, 33, pp. 38077-38089, (2022)
  • [4] ZHENG Chi, GAO Dangge, LYU Bin, Et al., Eco-friendly bionic flexible multifunctional sensors based on biomass-MXene composites, ACS Sustainable Chemistry & Engineering, 11, 15, pp. 5834-5844, (2023)
  • [5] 125 Questions: Exploration and discovery, (2021)
  • [6] SANDERSON K., Electronic skin: From flexibility to a sense of touch, Nature, 591, 7851, pp. 685-687, (2021)
  • [7] YAO Liming, ZHANG Yanrou, LIU Zhenhua, Et al., Progress in the preparation and application of nanocellulose/MXene flexible electronic devices, Transactions of China Pulp and Paper, 38, 3, pp. 9-17, (2023)
  • [8] GHODBANE S A, DUNN M G., Physical and mechanical properties of cross-linked type Ⅰ collagen scaffolds derived from bovine, porcine, and ovine tendons, Journal of Biomedical Materials Research Part A, 104, 11, pp. 2685-2692, (2016)
  • [9] HU Yang, LIU Lan, GU Zhipeng, Et al., Modification of collagen with a natural derived cross-linker, alginate dialdehyde, Carbohydrate Polymers, 102, pp. 324-332, (2014)
  • [10] SHARMA S, THIND S S, KAUR A., In vitro meat production system: Why and how?, Journal of Food Science and Technology, 52, 12, pp. 7599-7607, (2015)