Login / Signup

Coherent control of a high-orbital hole in a semiconductor quantum dot.

Jun-Yong YanChen ChenXiao-Dong ZhangYu-Tong WangHans-Georg BabinAndreas D WieckArne LudwigYun MengXiaolong HuHuali DuanWenchao ChenWei FangMoritz CygorekXing LinDa-Wei WangChao-Yuan JinFeng Liu
Published in: Nature nanotechnology (2023)
Coherently driven semiconductor quantum dots are one of the most promising platforms for non-classical light sources and quantum logic gates which form the foundation of photonic quantum technologies. However, to date, coherent manipulation of single charge carriers in quantum dots is limited mainly to their lowest orbital states. Ultrafast coherent control of high-orbital states is obstructed by the demand for tunable terahertz pulses. To break this constraint, we demonstrate an all-optical method to control high-orbital states of a hole via a stimulated Auger process. The coherent nature of the Auger process is proved by Rabi oscillation and Ramsey interference. Harnessing this coherence further enables the investigation of the single-hole relaxation mechanism. A hole relaxation time of 161 ps is observed and attributed to the phonon bottleneck effect. Our work opens new possibilities for understanding the fundamental properties of high-orbital states in quantum emitters and for developing new types of orbital-based quantum photonic devices.
Keyphrases
  • energy transfer
  • quantum dots
  • molecular dynamics
  • perovskite solar cells
  • single molecule
  • sensitive detection
  • high frequency
  • machine learning
  • monte carlo
  • artificial intelligence
  • electron transfer