Giant Photon‐Drag‐Induced Ultrafast Photocurrent in Diamond for Nonlinear Photonics

Author:

Xue Xinyi1,Du Wanyi1,Tao Wei23,Huang Yuanyuan1ORCID,Lei Zhen1,Zhu Lipeng4,Zou Yuxiao3,Liu Ying3,Liu Gangqin2,Gu Changzhi2,Li Yunliang25,Quan Baogang256ORCID,Xu Xinlong1ORCID

Affiliation:

1. Shaanxi Joint Lab of Graphene State Key Laboratory of Photon‐Technology in Western China Energy International Collaborative Center on Photoelectric Technology and Nano Functional Materials Institute of Photonics & Photon‐Technology Northwest University Xi'an 710069 China

2. Beijing National Laboratory for Condensed Matter Physics Institute of Physics Chinese Academy of Sciences Beijing 100190 China

3. College of Chemistry Beijing Normal University Beijing 100875 China

4. School of Electronic Engineering Xi'an University of Posts and Telecommunications Xi'an 710121 China

5. School of Physical Sciences University of Chinese Academy of Sciences Beijing 100049 China

6. Songshan Lake Material Laboratory Guangdong 523808 China

Abstract

AbstractDiamond is emerging as an attractive third‐generation wide‐bandgap semiconductor for future on‐chip nonlinear photonics and quantum optics due to its unique thermal, optical, and mechanical properties. However, the light‐driven current under below‐band gap excitation from the second‐order nonlinear optical effect in diamond is still challenging. Herein, a giant second‐order nonlinear photocurrent is observed in the chemical vapor deposition (CVD) diamond by utilizing terahertz (THz) emission spectroscopy. This ultrafast photocurrent originates from the photon drag effect (PDE), during which the momentum transfer from the incident photons to the charge carriers at the rich grain boundaries of the CVD diamond after the exclusive subgap π–π* transition upon femtosecond laser excitation. Especially, the interplay between circular and linear PDE to the THz generation is clarified and distinguished under elliptically polarized light excitation. Furthermore, the picosecond ultrafast dynamics of these charge carriers are also verified by infrared spectroscopy. Owing to the giant photon‐drag‐induced ultrafast photocurrent, the CVD diamond presents the highest THz emission efficiency compared with the reported carbon allotropes, which expands the new functionality of diamond nonlinear photonics into on‐chip THz devices.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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