Flexible radiofrequency carbon nanotube transistors operating at frequencies above 100 GHz

Fuente: arXiv
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Hauptverfasser: Xia, Fan, Xia, Tian, Su, Haotian, Gan, Lanyue, Hu, Qianlan, Wang, Wanyi, Huang, Ruyi, Bai, Tianshun, Chen, Yufan, Ma, Chao, Long, Guanhua, Wang, Shan X., Pop, Eric, Peng, Lian-Mao, Hu, Youfan
Format: Preprint
Veröffentlicht: 2025
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author Xia, Fan
Xia, Tian
Su, Haotian
Gan, Lanyue
Hu, Qianlan
Wang, Wanyi
Huang, Ruyi
Bai, Tianshun
Chen, Yufan
Ma, Chao
Long, Guanhua
Wang, Shan X.
Pop, Eric
Peng, Lian-Mao
Hu, Youfan
author_facet Xia, Fan
Xia, Tian
Su, Haotian
Gan, Lanyue
Hu, Qianlan
Wang, Wanyi
Huang, Ruyi
Bai, Tianshun
Chen, Yufan
Ma, Chao
Long, Guanhua
Wang, Shan X.
Pop, Eric
Peng, Lian-Mao
Hu, Youfan
contents The development of the sixth generation of wireless communications technology (6G) requires terminals that can operate at frequencies above 100 GHz. For human-centric applications, these terminals should also be flexible and have low power. However, current flexible radiofrequency transistors typically have lower maximum frequencies, in part due to the poor thermal conductivity of flexible substrates. Here, we report radiofrequency transistors that are based on aligned carbon nanotube arrays on flexible substrates and have current gain cutoff frequencies ($f_{\text{T}}$) and power gain cutoff frequencies ($f_{\text{max}}$) above 100 GHz. This is achieved by using electro-thermal co-design to improve the heat dissipation and radiofrequency performance of the devices. The transistors exhibit an on-state current of 0.947 mA $μ$m$^{-1}$, a transconductance of 0.728 mS $μ$m$^{-1}$, a peak extrinsic $f_{\text{T}}$ of 152 GHz, a peak extrinsic $f_{\text{max}}$ of 102 GHz, and a power consumption under 200 mW mm$^{-1}$. We also show that the devices can be used to create flexible radiofrequency amplifiers with an output power of 64 mW mm$^{-1}$ and a 11 dB power gain in the K-band.
format Preprint
id arxiv_https___arxiv_org_abs_2502_02485
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Flexible radiofrequency carbon nanotube transistors operating at frequencies above 100 GHz
Xia, Fan
Xia, Tian
Su, Haotian
Gan, Lanyue
Hu, Qianlan
Wang, Wanyi
Huang, Ruyi
Bai, Tianshun
Chen, Yufan
Ma, Chao
Long, Guanhua
Wang, Shan X.
Pop, Eric
Peng, Lian-Mao
Hu, Youfan
Applied Physics
Mesoscale and Nanoscale Physics
Materials Science
The development of the sixth generation of wireless communications technology (6G) requires terminals that can operate at frequencies above 100 GHz. For human-centric applications, these terminals should also be flexible and have low power. However, current flexible radiofrequency transistors typically have lower maximum frequencies, in part due to the poor thermal conductivity of flexible substrates. Here, we report radiofrequency transistors that are based on aligned carbon nanotube arrays on flexible substrates and have current gain cutoff frequencies ($f_{\text{T}}$) and power gain cutoff frequencies ($f_{\text{max}}$) above 100 GHz. This is achieved by using electro-thermal co-design to improve the heat dissipation and radiofrequency performance of the devices. The transistors exhibit an on-state current of 0.947 mA $μ$m$^{-1}$, a transconductance of 0.728 mS $μ$m$^{-1}$, a peak extrinsic $f_{\text{T}}$ of 152 GHz, a peak extrinsic $f_{\text{max}}$ of 102 GHz, and a power consumption under 200 mW mm$^{-1}$. We also show that the devices can be used to create flexible radiofrequency amplifiers with an output power of 64 mW mm$^{-1}$ and a 11 dB power gain in the K-band.
title Flexible radiofrequency carbon nanotube transistors operating at frequencies above 100 GHz
topic Applied Physics
Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2502.02485