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Ligand-Engineered HgTe Colloidal Quantum Dot Solids for Infrared Photodetectors.

Ji YangHuicheng HuYifei LvMohan YuanBinbin WangZiyang HeShiwu ChenYa WangZhixiang HuMengxuan YuXingchen ZhangJungang HeJianbing ZhangHuan LiuHsien-Yi HsuJiang TangHaisheng SongXinzheng Lan
Published in: Nano letters (2022)
HgTe colloidal quantum dots (CQDs) are promising absorber systems for infrared detection due to their widely tunable photoresponse in all infrared regions. Up to now, the best-performing HgTe CQD photodetectors have relied on using aggregated CQDs, limiting the device design, uniformity and performance. Herein, we report a ligand-engineered approach that produces well-separated HgTe CQDs. The present strategy first employs strong-binding alkyl thioalcohol ligands to enable the synthesis of well-dispersed HgTe cores, followed by a second growth process and a final postligand modification step enhancing their colloidal stability. We demonstrate highly monodisperse HgTe CQDs in a wide size range, from 4.2 to 15.0 nm with sharp excitonic absorption fully covering short- and midwave infrared regions, together with a record electron mobility of up to 18.4 cm 2 V -1 s -1 . The photodetectors show a room-temperature detectivity of 3.9 × 10 11 jones at a 1.7 μm cutoff absorption edge.
Keyphrases
  • room temperature
  • quantum dots
  • ionic liquid