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Porous carbon-based metal-free monolayers towards highly stable and flexible wearable thermoelectrics and microelectronics.

Xiaoran ShiHongsheng LiuZi-Yu HuJijun ZhaoJunfeng Gao
Published in: Nanoscale (2023)
In the search for high mechanical strength and flexibility, ultrahigh semiconducting speed is crucial for the next generation of microelectronic and wearable electronics. Herein, we propose two 2D graphene-like macrocyclic complex carbon-based monolayers, namely g-MC-A and g-MC-B. Both monolayers are dynamically stable according to phonon dispersion and ab initio molecular dynamics simulations. The yield stress of these two layers reaches half that of graphene, revealing remarkably high mechanical strength. Besides, both monolayers are semiconductors. The electron mobility of g-MC-A is high: up to 10 4 cm 2 V -1 s -1 , comparable to black phosphorene. Furthermore, these two monolayers exhibit excellent inherent conductivity with anisotropic characteristics. Interestingly, an extra valley is observed near the conduction band edge for both layers, further simulation predicted both metal-free monolayers will exhibit ZT > 1, implying high thermoelectric performance. Therefore, these two C-based metal-free layers have promising applications in mechanical enhancement, microelectronics, wearable electronics and thermoelectric devices.
Keyphrases
  • molecular dynamics simulations
  • solar cells
  • room temperature
  • molecular docking
  • ionic liquid
  • carbon nanotubes
  • highly efficient
  • walled carbon nanotubes
  • virtual reality