Textile Electronics with Laser-Induced Graphene/Polymer Hybrid Fibers; ACS Applied Materials and Interfaces; Vol. 15, iss.32
| Parent link: | ACS Applied Materials and Interfaces.— .— Washington: American Chemical Society Vol. 15, iss.32.— 2023.— P. 38946-38955 |
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| Tác giả khác: | , , , , , , , , , , |
| Tóm tắt: | Title screen The concept of wearables is rapidly evolving from flexible polymer-based devices to textile electronics. The reason for this shift is the ability of textiles to ensure close contact with the skin, resulting in comfortable, lightweight, and compact “always with you” sensors. We are contributing to this polymer-textile transition by introducing a novel and simple way of laser intermixing of graphene with synthetic fabrics to create wearable sensing platforms. Our hybrid materials exhibit high electrical conductivity (87.6 ± 36.2 Ω/sq) due to the laser reduction of graphene oxide and simultaneous laser-induced graphene formation on the surface of textiles. Furthermore, the composite created between graphene and nylon ensures the durability of our materials against sonication and washing with detergents. Both of these factors are essential for real-life applications, but what is especially useful is that our free-form composites could be used as-fabricated without encapsulation, which is typically required for conventional laser-scribed materials. We demonstrate the exceptional versatility of our new hybrid textiles by successfully recording muscle activity, heartbeat, and voice. We also show a gesture sensor and an electrothermal heater embedded within a single commercial glove. Additionally, the use of these textiles could be extended to personal protection equipment and smart clothes. We achieve this by implementing self-sterilization with light and laser-induced functionalization with silver nanoparticles, which results in multifunctional antibacterial textiles. Moreover, incorporating silver into such fabrics enables their use as surface-enhanced Raman spectroscopy sensors, allowing for the direct analysis of drugs and sweat components on the clothing itself. Our research offers valuable insights into simple and scalable processes of textile-based electronics, opening up new possibilities for paradigms like the Internet of Medical Things Текстовый файл AM_Agreement |
| Ngôn ngữ: | Tiếng Anh |
| Được phát hành: |
2023
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| Những chủ đề: | |
| Truy cập trực tuyến: | https://doi.org/10.1021/acsami.3c06968 |
| Định dạng: | Điện tử Chương của sách |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=684929 |
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| 200 | 1 | |a Textile Electronics with Laser-Induced Graphene/Polymer Hybrid Fibers |f A. Lipovka, M. Fatkullin, S. Shchadenko [et al.] | |
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| 300 | |a Title screen | ||
| 320 | |a References: 38 tit | ||
| 330 | |a The concept of wearables is rapidly evolving from flexible polymer-based devices to textile electronics. The reason for this shift is the ability of textiles to ensure close contact with the skin, resulting in comfortable, lightweight, and compact “always with you” sensors. We are contributing to this polymer-textile transition by introducing a novel and simple way of laser intermixing of graphene with synthetic fabrics to create wearable sensing platforms. Our hybrid materials exhibit high electrical conductivity (87.6 ± 36.2 Ω/sq) due to the laser reduction of graphene oxide and simultaneous laser-induced graphene formation on the surface of textiles. Furthermore, the composite created between graphene and nylon ensures the durability of our materials against sonication and washing with detergents. Both of these factors are essential for real-life applications, but what is especially useful is that our free-form composites could be used as-fabricated without encapsulation, which is typically required for conventional laser-scribed materials. We demonstrate the exceptional versatility of our new hybrid textiles by successfully recording muscle activity, heartbeat, and voice. We also show a gesture sensor and an electrothermal heater embedded within a single commercial glove. Additionally, the use of these textiles could be extended to personal protection equipment and smart clothes. We achieve this by implementing self-sterilization with light and laser-induced functionalization with silver nanoparticles, which results in multifunctional antibacterial textiles. Moreover, incorporating silver into such fabrics enables their use as surface-enhanced Raman spectroscopy sensors, allowing for the direct analysis of drugs and sweat components on the clothing itself. Our research offers valuable insights into simple and scalable processes of textile-based electronics, opening up new possibilities for paradigms like the Internet of Medical Things | ||
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| 461 | 1 | |t ACS Applied Materials and Interfaces |c Washington |n American Chemical Society | |
| 463 | 1 | |t Vol. 15, iss.32 |v P. 38946-38955 |d 2023 | |
| 610 | 1 | |a laser processing | |
| 610 | 1 | |a textile sensor | |
| 610 | 1 | |a graphene composite | |
| 610 | 1 | |a conductive textile | |
| 610 | 1 | |a wearables | |
| 610 | 1 | |a электронный ресурс | |
| 610 | 1 | |a труды учёных ТПУ | |
| 701 | 1 | |a Lipovka |b A. A. |c chemist |c Associate Scientist of Tomsk Polytechnic University |f 1993- |g Anna Anatolyevna |9 21753 | |
| 701 | 1 | |a Fatkullin |b M. I. |c chemical engineer |c Engineer of Tomsk Polytechnic University |f 1997- |g Maksim Ilgizovich |9 22844 | |
| 701 | 1 | |a Shchadenko |b S. V. |c an expert in the field of electronics |c Assistant Tomsk Polytechnic University |f 1981- |g Sergey Vladimirovich |9 18240 | |
| 701 | 1 | |a Chernova |b A. P. |c chemist |c Associate Professor of Tomsk Polytechnic University, Candidate of chemical sciences |f 1984- |g Anna Pavlovna |9 22278 | |
| 701 | 1 | |a Plotnikov |b E. V. |c chemist |c Associate Professor of Tomsk Polytechnic University, Candidate of Chemical Sciences |f 1983- |g Evgeny Vladimirovich |9 16417 | |
| 701 | 1 | |a Menzelintsev |b V. A. |c специалист в области биомедицинских технологий |c лаборант Томского политехнического университета |f 1998- |g Vitaly Andreevich |9 22928 | |
| 701 | 0 | |a Li Shuang | |
| 701 | 0 | |a Qiu Li | |
| 701 | 0 | |a Cheng Chong | |
| 701 | 1 | |a Rodriguez (Rodriges) Contreras |b R. D. |c Venezuelan physicist, doctor of science |c Professor of Tomsk Polytechnic University |f 1982- |g Raul David |9 21179 | |
| 701 | 1 | |a Sheremet |b E. S. |c physicist |c Professor of Tomsk Polytechnic University |f 1988- |g Evgeniya Sergeevna |9 21197 | |
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