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Synthesis of heptanary monolayer medium-entropy alloy via chemical vapor deposition for high-performance infrared photodetectors

  • Lin Jia
  • , Ruichun Luo
  • , Chunyu Zhao
  • , Jingbo Pang
  • , Xiaoyu Zheng
  • , Denan Kong
  • , Ping Wang
  • , Yang Yang
  • , Weikang Dong
  • , Longyi Fu
  • , Dian Li
  • , Tianyu Zang
  • , Shoujun Zheng
  • , Wu Zhou*
  • , Jiadong Zhou*
  • , Yao Zhou*
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • University of Chinese Academy of Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

Entropy engineering has emerged as a promising paradigm for tailoring the electronic and photoelectric properties of materials. Although high-entropy transition metal sulfides have been achieved, entropy engineering in two-dimensional (2D) tellurides remains challenging. In this work, we report the successful synthesis of a 1T' monolayer heptanary medium-entropy (ME) alloy (MoaWbFecCodSxSeyTez) via a one-step chemical vapor deposition method. Advanced characterizations, including scanning transmission electron microscopy, energy dispersive X-ray spectroscopy, and electron energy loss spectroscopy confirm the uniform atomic-level distribution of the seven constituent elements within the alloy. The 1T' ME alloy device exhibits a high drain current of ~ 6.5 mA, which is 216 times higher than the ~ 30 μA observed in pristine 1T' MoTe2. Furthermore, the 1T' ME alloy photodetector exhibits responsivities of 27.92 A/W at 1064 nm and 63.74 A/W at 1550 nm, outperforming those of the pristine 1T' MoTe2 by more than two orders of magnitude. This remarkable enhancement is attributed to the reduced Schottky barrier (15.9 meV) at the 1T' ME alloy/electrode interface, along with the enhanced conductance (0.43 S) and reduced thermal activation energy (4.1 meV) in the 1T' ME alloy, collectively facilitating more efficient carrier injection and transport. Our work provides a distinct pathway for tailoring the properties of transition metal dichalcogenides through entropy engineering and offers valuable insights for the design of high-performance infrared photodetectors.

Original languageEnglish
Article number94908184
JournalNano Research
Volume19
Issue number5
DOIs
Publication statusPublished - May 2026
Externally publishedYes

Keywords

  • chemical vapor deposition
  • medium-entropy
  • monolayer
  • photodetector
  • tellurides

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