Overcoming Stability and Substrate Adhesion Challenges by Laser-Induced Transfer of MXenes; ACS Applied Materials and Interfaces; Vol. 17, iss. 50

Bibliografiset tiedot
Parent link:ACS Applied Materials and Interfaces.— .— Washington: American Chemical Society
Vol. 17, iss. 50.— 2025.— P. 68684–68694
Muut tekijät: Lipovka A. A. Anna Anatolyevna, Rodriguez (Rodriges) Contreras R. D. Raul David, Garcia Balza A. S. Aura Samid, Kogolev D. A. Dmitry Anatoljevich, Song Ziyang, Wang Ranran, Sheremet E. S. Evgeniya Sergeevna
Yhteenveto:Title screen
Despite their metallic conductivity and solution processability, the practical application of MXenes is limited by two persistent challenges: poor adhesion to substrates and low chemical stability in air, which leads to oxidation. Conventional stabilization approaches often involve antioxidant doping or polymer lamination that may compromise electrical conductivity. Here, we tackle these issues by introducing a single-step laser-induced transfer (LIT) process that engineers the MXene-substrate interface to enhance adhesion and chemical stability simultaneously. Our method exploits the spatial confinement of MXene films sandwiched between a glass slide and a polymer substrate. This configuration creates an oxygen-depleted microenvironment, and under laser irradiation allowing for the simultaneous transfer of Ti3C2Tx MXene films onto both top and bottom substrates. LIT results in solid-state sintering that, in addition to boosting adhesion, also provides protective effects due to the development of a carbon-rich surface layer. This enhanced adhesion and stability are demonstrated by low sheet resistance, remaining below 25 Ω/sq for MXenes/glass and below 6 Ω/sq for MXenes/TPU after environmental aging for 10 days at 95 ± 2% relative humidity and 40–60 °C. In contrast, conventional direct laser patterning fails to achieve this level of robustness and instead accelerates MXenes decomposition. The suppressed oxidation and mechanical stability enabled by LIT allowed the creation of robust interfaces suitable for electrothermal heaters and proof-of-concept breath sensors. This work establishes laser processing not merely as a patterning tool but also as a powerful interfacial engineering technique, resolving key issues that affect MXene implementation in electronics, sensors, and wearable devices
Текстовый файл
AM_Agreement
Kieli:englanti
Julkaistu: 2025
Aiheet:
Linkit:https://doi.org/10.1021/acsami.5c18259
Aineistotyyppi: Elektroninen Kirjan osa
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=684834

MARC

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330 |a Despite their metallic conductivity and solution processability, the practical application of MXenes is limited by two persistent challenges: poor adhesion to substrates and low chemical stability in air, which leads to oxidation. Conventional stabilization approaches often involve antioxidant doping or polymer lamination that may compromise electrical conductivity. Here, we tackle these issues by introducing a single-step laser-induced transfer (LIT) process that engineers the MXene-substrate interface to enhance adhesion and chemical stability simultaneously. Our method exploits the spatial confinement of MXene films sandwiched between a glass slide and a polymer substrate. This configuration creates an oxygen-depleted microenvironment, and under laser irradiation allowing for the simultaneous transfer of Ti3C2Tx MXene films onto both top and bottom substrates. LIT results in solid-state sintering that, in addition to boosting adhesion, also provides protective effects due to the development of a carbon-rich surface layer. This enhanced adhesion and stability are demonstrated by low sheet resistance, remaining below 25 Ω/sq for MXenes/glass and below 6 Ω/sq for MXenes/TPU after environmental aging for 10 days at 95 ± 2% relative humidity and 40–60 °C. In contrast, conventional direct laser patterning fails to achieve this level of robustness and instead accelerates MXenes decomposition. The suppressed oxidation and mechanical stability enabled by LIT allowed the creation of robust interfaces suitable for electrothermal heaters and proof-of-concept breath sensors. This work establishes laser processing not merely as a patterning tool but also as a powerful interfacial engineering technique, resolving key issues that affect MXene implementation in electronics, sensors, and wearable devices 
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461 1 |t ACS Applied Materials and Interfaces  |c Washington  |n American Chemical Society 
463 1 |t Vol. 17, iss. 50  |v P. 68684–68694  |d 2025 
610 1 |a MXenes 
610 1 |a 2D Materials 
610 1 |a Laser Processing 
610 1 |a Laser-Induced Transfer (LIT) 
610 1 |a Laser-Induced Backward Transfer (LIBT) 
610 1 |a Laser-Induced Forward Transfer (LIFT) 
610 1 |a Adhesion 
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 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 Garcia Balza  |b A. S.  |c specialist in the field of petroleum engineering  |c Assistant of the Department of Tomsk Polytechnic University  |f 1987-  |g Aura Samid  |9 21390 
701 1 |a Kogolev  |b D. A.  |c Chemical engineer  |c Research Engineer of Tomsk Polytechnic University  |f 1998-  |g Dmitry Anatoljevich  |9 22691 
701 0 |a Song Ziyang 
701 0 |a Wang Ranran 
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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