Bio-inspired robust and highly thermal conductive BNNS/PBO nanofiber composite films with excellent thermal stability, wear resistance, and adjustable photothermal properties DOI
T. Sun, Wenxin Cao, Kechen Zhao

и другие.

Chemical Engineering Journal, Год журнала: 2023, Номер 474, С. 145916 - 145916

Опубликована: Сен. 6, 2023

Язык: Английский

Tuning optical, dielectric, and electrical properties of Polyethylene oxide/Carboxymethyl cellulose doped with mixed metal oxide nanoparticles for flexible electronic devices DOI
Laila M. Al-Harbi, Qana A. Alsulami, M. O. Farea

и другие.

Journal of Molecular Structure, Год журнала: 2022, Номер 1272, С. 134244 - 134244

Опубликована: Сен. 30, 2022

Язык: Английский

Процитировано

89

Progress and opportunities in additive manufacturing of electrically conductive polymer composites DOI Creative Commons

Yinjia Yan,

Yixue Jiang,

Evelyn Ling Ling Ng

и другие.

Materials Today Advances, Год журнала: 2022, Номер 17, С. 100333 - 100333

Опубликована: Дек. 10, 2022

Electrically conductive polymer composites have sparked considerable interest in the research community due to their unique advantages that come from combining regular polymers with electronic properties of metals or semiconductors a synergistic manner. Additive manufacturing (AM) offers promising prospects realm by allowing for greater design flexibility, more complicated shapes, and rapid manufacturing. In addition, rising number additive methods, including material extrusion, vat photopolymerization, binder jetting, powder bed fusion, sheet lamination are now available 3D printing composites. this article, we present an insight into current advances field developed manufacturing, which accelerate development printable electrical devices. We examine various AM processes terms respective limitations, address requirements significant breakthroughs composites, discuss applications – such as flexible electronics, energy storage conversion devices, etc. This overview concludes assessment potential future directions themes developing area.

Язык: Английский

Процитировано

82

Recent progress in conductive electrospun materials for flexible electronics: Energy, sensing, and electromagnetic shielding applications DOI
Luiza A. Mercante, Rafaela S. André, Murilo H.M. Facure

и другие.

Chemical Engineering Journal, Год журнала: 2023, Номер 465, С. 142847 - 142847

Опубликована: Апрель 10, 2023

Язык: Английский

Процитировано

71

Dual-sensing nano-yarns for real-time pH and temperature monitoring in smart textiles DOI
Yunlei Yin, Cheng Guo,

Qianqian Mu

и другие.

Chemical Engineering Journal, Год журнала: 2024, Номер 500, С. 157115 - 157115

Опубликована: Окт. 30, 2024

Язык: Английский

Процитировано

45

The Potential of Electrospinning to Enable the Realization of Energy-Autonomous Wearable Sensing Systems DOI Creative Commons
K. R. Sanjaya Dinuwan Gunawardhana, Roy B. V. B. Simorangkir, Garrett B. McGuinness

и другие.

ACS Nano, Год журнала: 2024, Номер 18(4), С. 2649 - 2684

Опубликована: Янв. 17, 2024

The market for wearable electronic devices is experiencing significant growth and increasing potential the future. Researchers worldwide are actively working to improve these devices, particularly in developing electronics with balanced functionality wearability commercialization. Electrospinning, a technology that creates nano/microfiber-based membranes high surface area, porosity, favorable mechanical properties human vitro vivo applications using broad range of materials, proving be promising approach. Wearable can use mechanical, thermal, evaporative solar energy harvesting technologies generate power future needs, providing more options than traditional sources. This review offers comprehensive analysis how electrospinning used energy-autonomous wireless sensing systems. It provides an overview technology, fundamental mechanisms, scavenging, physiological signal sensing, storage, antenna data transmission. discusses combining textile engineering create superior increase collaboration opportunities. Additionally, challenges related conducting appropriate testing market-ready products also discussed.

Язык: Английский

Процитировано

28

Highly Stretchable Semiconducting Aerogel Films for High‐Performance Flexible Electronics DOI

Puzhong Gu,

Linlin Lu,

Xiao Yang

и другие.

Advanced Functional Materials, Год журнала: 2024, Номер 34(33)

Опубликована: Фев. 25, 2024

Abstract Highly stretchable aerogel films are attractive for advanced next‐generation electronics. However, it is a great challenge to achieve high stretchability films. Here, several types of unprecedented ultra‐stretchable semiconducting polymer‐based with crimpled porous structures developed via crosslinking and template methods combined uniaxial biaxial pre‐stretching strategies. The obtained by exhibit ultrahigh up 100–200%, while those show 50%. resulting strain‐insensitive electrical joule heating properties. A prototype the film‐based organic electrochemical transistor (OECT) first time. Benefiting from their unique structures, OECTs enhanced on/off ratio transconductance compared corresponding dense OECTs, 100%, stretching stability 10 000 cycles under 30% strain. It demonstrated that can be applied as high‐performance artificial synapses biosensors. This work gives versatile strategy toward highly promising flexible

Язык: Английский

Процитировано

19

Breathable, superhydrophobic and multifunctional Janus nanofibers for dual-mode passive thermal management/facial expression recognition with deep learning DOI

Xuanjie Zong,

Chengpeng Zhang, Nianqiang Zhang

и другие.

Chemical Engineering Journal, Год журнала: 2025, Номер unknown, С. 159759 - 159759

Опубликована: Янв. 1, 2025

Язык: Английский

Процитировано

7

Fabrication and finite element simulation of 3D printed poly L-lactic acid scaffolds coated with alginate/carbon nanotubes for bone engineering applications DOI

Aiien Moarrefzadeh,

Mohammad Reza Morovvati,

Sajad Niazi Angili

и другие.

International Journal of Biological Macromolecules, Год журнала: 2022, Номер 224, С. 1496 - 1508

Опубликована: Окт. 29, 2022

Язык: Английский

Процитировано

45

Elastic Fibers/Fabrics for Wearables and Bioelectronics DOI Creative Commons
Yufan Zhang, Jiahui Zhou, Yue Zhang

и другие.

Advanced Science, Год журнала: 2022, Номер 9(35)

Опубликована: Окт. 17, 2022

Wearables and bioelectronics rely on breathable interface devices with bioaffinity, biocompatibility, smart functionality for interactions between beings things the surrounding environment. Elastic fibers/fabrics mechanical adaptivity to various deformations complex substrates, are promising act as fillers, carriers, dressings, scaffolds in construction of biointerfaces human body, skins, organs, plants, realizing functions such energy exchange, sensing, perception, augmented virtuality, health monitoring, disease diagnosis, intervention therapy. This review summarizes highlights latest breakthroughs elastic wearables bioelectronics, aiming offer insights into elasticity mechanisms, production methods, electrical components integration strategies fibers/fabrics, presenting a profile management, sensors, e-skins, thermal personal protection, wound healing, biosensing, drug delivery. The trans-disciplinary application from biomedicine provides important inspiration technology transplantation function adapt different systems. As discussion platform, here main challenges possible solutions field proposed, hopefully can provide guidance promoting development e-textiles consideration trade-off mechanical/electrical performance, industrial-scale production, diverse environmental adaptivity, multiscenario on-spot applications.

Язык: Английский

Процитировано

43

Recent Advances and Challenges in Textile Electrodes for Wearable Biopotential Signal Monitoring: A Comprehensive Review DOI Creative Commons

C. M. Vidhya,

Yogita Maithani, J. P. Singh

и другие.

Biosensors, Год журнала: 2023, Номер 13(7), С. 679 - 679

Опубликована: Июнь 26, 2023

The technology of wearable medical equipment has advanced to the point where it is now possible monitor electrocardiogram and electromyogram comfortably at home. transition from wet Ag/AgCl electrodes various types gel-free dry made continuously accurately biopotential signals. Fabrics or textiles, which were once meant protect human body, have undergone significant development are employed as intelligent textile materials for healthcare monitoring. conductive provide benefit being breathable comfortable. In recent years, there been a advancement in fabrication monitoring This review paper provides comprehensive overview advances signal covers aspects technology, including electrode design, manufacturing techniques utilised fabricate smart fabrics, performance characteristics. advantages limitations discussed, key challenges future research directions identified. will allow them be used their fullest potential gathering during physical activities such running, swimming, other exercises while linked into wireless portable health systems.

Язык: Английский

Процитировано

41