Page 17 - Read Online
P. 17
Fan et al. Soft Sci 2024;4:11 https://dx.doi.org/10.20517/ss.2023.47 Page 15 of 16
39. Omoloso O, Mortimer K, Wise WR, Jraisat L. Sustainability research in the leather industry: a critical review of progress and
opportunities for future research. J Clean Prod 2021;285:125441. DOI
40. Liu X, Zheng C, Luo X, Wang X, Jiang H. Recent advances of collagen-based biomaterials: multi-hierarchical structure, modification
and biomedical applications. Mater Sci Eng C Mater 2019;99:1509-22. DOI
41. Ma Z, Xiang X, Shao L, Zhang Y, Gu J. Multifunctional wearable silver nanowire decorated leather nanocomposites for joule heating,
electromagnetic interference shielding and piezoresistive sensing. Angew Chem Int Ed Engl 2022;61:e202200705. DOI PubMed
42. Zou B, Chen Y, Liu Y, et al. Repurposed leather with sensing capabilities for multifunctional electronic skin. Adv Sci 2019;6:1801283.
DOI PubMed PMC
43. Liu C, Wang X, Huang X, Liao X, Shi B. Absorption and reflection contributions to the high performance of electromagnetic waves
shielding materials fabricated by compositing leather matrix with metal nanoparticles. ACS Appl Mater Interfaces 2018;10:14036-44.
DOI
44. Li Q, Zhong R, Xiao X, Liao J, Liao X, Shi B. Lightweight and flexible Bi@Bi-La natural leather composites with superb X-ray
radiation shielding performance and low secondary radiation. ACS Appl Mater Interfaces 2020;12:54117-26. DOI
45. Mo C, Lei X, Tang X, et al. Nanoengineering natural leather for dynamic thermal management and electromagnetic interference
shielding. Small 2023;19:2303368. DOI
46. Ye R, James DK, Tour JM. Laser-induced graphene: from discovery to translation. Adv Mater 2019;31:e1803621. DOI PubMed
47. Luo Y, Miao Y, Wang H, et al. Laser-induced Janus graphene/poly(p-phenylene benzobisoxazole) fabrics with intrinsic flame
retardancy as flexible sensors and breathable electrodes for fire-fighting field. Nano Res 2023;16:7600-8. DOI
48. Yang D, Nam HK, Le TSD, et al. Multimodal E-textile enabled by one-step maskless patterning of femtosecond-laser-induced
graphene on nonwoven, knit, and woven textiles. ACS Nano 2023;17:18893-904. DOI
49. Wang Z, Chen B, Sun S, Pan L, Gao Y. Maskless formation of conductive carbon layer on leather for highly sensitive flexible strain
sensors. Adv Elect Mater 2020;6:2000549. DOI
50. Dong D, Yang Y, Zhang H, et al. Nanocatalysts induced self-triggering leather skin for human-machine interaction. Chem Eng J
2023;454:140269. DOI
51. Zou X, Wang X, Gou M, et al. Ultra-strong adhesive, self-healing and electroactive bio-based hydrogels for the on-demand fabrication
of sandwich-inspired smart electronic sensing floors. J Mater Chem A 2022;10:14555-67. DOI
52. Sang M, Zhang J, Liu S, et al. Advanced MXene/shear stiffening composite-based sensor with high-performance electromagnetic
interference shielding and anti-impacting Bi-protection properties for smart wearable device. Chem Eng J 2022;440:135869. DOI
53. Fan Z, Zhao C, Wu J, et al. Intelligent safeguarding leather with excellent energy absorption via the toughness-flexibility coupling
designation. Compos Part A Appl Sci Manuf 2022;161:107078. DOI
54. Fan Z, Lu L, Sang M, et al. Wearable safeguarding leather composite with excellent sensing, thermal management, and
electromagnetic interference shielding. Adv Sci 2023;10:e2302412. DOI PubMed PMC
55. Ayyappan VG, Prakash D, Jaisankar SN, Sadhukhan N, Alam MS, Samanta D. Nanoconjugates of methacrylic polymers: synthesis,
characterization, and immobilization to leather. J Appl Polym Sci 2020;137:48627. DOI
56. Shajari S, Ramakrishnan S, Karan K, Sudak LJ, Sundararaj U. Ultrasensitive wearable sensor with novel hybrid structures of silver
nanowires and carbon nanotubes in fluoroelastomer: multi-directional sensing for human health monitoring and stretchable electronics.
Appl Mater Today 2022;26:101295. DOI
57. Khalid MAU, Chang SH. Flexible strain sensors for wearable applications fabricated using novel functional nanocomposites: a review.
Compos Struct 2022;284:115214. DOI
58. Xie R, Hou S, Chen Y, et al. Leather-based strain sensor with hierarchical structure for motion monitoring. Adv Mater Technol
2019;4:1900442. DOI
59. Xie R, Zhu J, Wu H, et al. 3D-conductive pathway written on leather for highly sensitive and durable electronic whisker. J Mater
Chem C 2020;8:9748-54. DOI
60. Wang Q, Sheng H, Lv Y, et al. A skin-mountable hyperthermia patch based on metal nanofiber network with high transparency and
low resistivity toward subcutaneous tumor treatment (Adv. Funct. Mater. 21/2022). Adv Funct Mater 2022;32:2270123. DOI
61. Yan X, Chen S, Zhang G, et al. Highly breathable, surface-hydrophobic and wet-adhesive silk based epidermal electrode for long-term
electrophysiological monitoring. Compos Sci Technol 2022;230:109751. DOI
62. Jia L, Zeng S, Ding H, et al. Leather-based multi-stimuli responsive chromisms. Adv Funct Mater 2021;31:2104427. DOI
63. Al-Saleh MH, Saadeh WH, Sundararaj U. EMI shielding effectiveness of carbon based nanostructured polymeric materials: a
comparative study. Carbon 2013;60:146-56. DOI
64. Bai Z, Wang X, Huang M, et al. Versatile nano-micro collagen fiber-based wearable electronics for health monitoring and thermal
management. J Mater Chem A 2023;11:726-41. DOI
65. Wang Y, Ding P, Xu H, et al. Advanced X-ray shielding materials enabled by the coordination of well-dispersed high atomic number
elements in natural leather. ACS Appl Mater Interfaces 2020;12:19916-26. DOI
66. Li H, Zhou J, Yan L, et al. Barbican-inspired bimetallic core-shell nanoparticles for fabricating natural leather-based radiation
protective materials with enhanced X-ray shielding capability. Chem Eng J 2023;466:143355. DOI
67. Li Q, Wang Y, Xiao X, et al. Research on X-ray shielding performance of wearable Bi/Ce-natural leather composite materials. J
Hazard Mater 2020;398:122943. DOI
68. Yang L, Liu Y, Ma C, et al. Kinetics of non-isothermal decomposition and flame retardancy of goatskin fiber treated with melamine-

