Javascript must be enabled to continue!
Experimental study on the stimulated saturation of terahertz free electron laser
View through CrossRef
China Academy of Engineering Physics terahertz free electron laser (CAEP THz FEL,CTFEL) is the first THz FEL oscillator in China,which is jointly built by CAEP,Peking University and Tsinghua University.It is designed as a high-repetition-rate and high-duty-cycle linac-based FEL facility.
This THz FEL mainly consists of a gallium arsenide (GaAs) photocathode high-voltage direct current (DC) gun,a superconducting radio frequency (RF) linac,a planar undulator,and a quasi-concentric optical resonator. The DC gun provides a high-brightness electron beam with the bunch charge of about 100 pC and the repetition rate of 54.167~MHz.The normalized emittance of the electron beam is less than 10m,and the energy spread is less than 0.75%.A 24-cell superconducting RF accelerator provides an effective field gradient of about 10 MV/m and energizes the electron beam to 6-8~MeV.The beam then goes through the undulator and generates the spontaneous radiation,which is reflected back and forth in the optical resonator and then stimulated by the electron beam.
The first stimulated saturation of CTFEL in the macro-pulse mode was obtained in August,2017.In this paper,the THz spectrum is measured by a Fourier spectrometer (Bruker VERTEX 80 V).The macro-pulse energy is measured by an absolute energy meter from Thomas Keating Instruments.The longitudinal beam length is preliminarily calculated by the auto-correlation curve from the time-domain signal of the spectrometer.The macro-pulse duration is captured by a GeGa cryogenic detector from QMC Instrument.The measurement results indicate that the terahertz laser frequency is continuously adjustable from 2 THz to 3 THz.The macro-pulse average power is more than 10 W and the micro-pulse power is more than 0.3 MW.The single-pass gain is larger than 2.5%.
This facility is now working in macro-pulse mode in the first step,also called step one.The minimum macro-pulse duration is about 50s and the maximum is about 2 ms.The macro-pulse repetition is 1 Hz or 5 Hz.The typical pulse duration and repetition rate are 1 ms and 1 Hz,respectively.In the middle of 2018,the duty cycle will upgrade to more than 10% as step two.And the continuous wave (CW) operation will be obtained in step three by the end of 2018.The spectrum adjustment range will also be expanded to cover from 1 THz to 4 THz by then.
Some application experiments have been carried out on the platform of CTFEL.This facility will greatly promote the development of THz science and its applications in material science,chemistry science,biomedicine science and many other cutting-edge areas in general.
Acta Physica Sinica, Chinese Physical Society and Institute of Physics, Chinese Academy of Sciences
Li Ming
Yang Xing-Fan
Xu Zhou
Shu Xiao-Jian
Lu Xiang-Yang
Huang Wen-Hui
Wang Han-Bin
Dou Yu-Huan
Shen Xu-Ming
Shan Li-Jun
Deng De-Rong
Xu Yong
Bai Wei
Feng Di-Chao
Wu Dai
Xiao De-Xin
Wang Jian-Xin
Luo Xing
Zhou Kui
Lao Cheng-Long
Yan Long-Gang
Lin Si-Fen
Zhang Peng
Zhang Hao
He Tian-Hui
Pan Qing
Li Xiang-Kun
Li Peng
Liu Yu
Yang Lin-De
Liu Jie
Zhang De-Min
Li Kai
Chen Ya-Nan
Title: Experimental study on the stimulated saturation of terahertz free electron laser
Description:
China Academy of Engineering Physics terahertz free electron laser (CAEP THz FEL,CTFEL) is the first THz FEL oscillator in China,which is jointly built by CAEP,Peking University and Tsinghua University.
It is designed as a high-repetition-rate and high-duty-cycle linac-based FEL facility.
This THz FEL mainly consists of a gallium arsenide (GaAs) photocathode high-voltage direct current (DC) gun,a superconducting radio frequency (RF) linac,a planar undulator,and a quasi-concentric optical resonator.
The DC gun provides a high-brightness electron beam with the bunch charge of about 100 pC and the repetition rate of 54.
167~MHz.
The normalized emittance of the electron beam is less than 10m,and the energy spread is less than 0.
75%.
A 24-cell superconducting RF accelerator provides an effective field gradient of about 10 MV/m and energizes the electron beam to 6-8~MeV.
The beam then goes through the undulator and generates the spontaneous radiation,which is reflected back and forth in the optical resonator and then stimulated by the electron beam.
The first stimulated saturation of CTFEL in the macro-pulse mode was obtained in August,2017.
In this paper,the THz spectrum is measured by a Fourier spectrometer (Bruker VERTEX 80 V).
The macro-pulse energy is measured by an absolute energy meter from Thomas Keating Instruments.
The longitudinal beam length is preliminarily calculated by the auto-correlation curve from the time-domain signal of the spectrometer.
The macro-pulse duration is captured by a GeGa cryogenic detector from QMC Instrument.
The measurement results indicate that the terahertz laser frequency is continuously adjustable from 2 THz to 3 THz.
The macro-pulse average power is more than 10 W and the micro-pulse power is more than 0.
3 MW.
The single-pass gain is larger than 2.
5%.
This facility is now working in macro-pulse mode in the first step,also called step one.
The minimum macro-pulse duration is about 50s and the maximum is about 2 ms.
The macro-pulse repetition is 1 Hz or 5 Hz.
The typical pulse duration and repetition rate are 1 ms and 1 Hz,respectively.
In the middle of 2018,the duty cycle will upgrade to more than 10% as step two.
And the continuous wave (CW) operation will be obtained in step three by the end of 2018.
The spectrum adjustment range will also be expanded to cover from 1 THz to 4 THz by then.
Some application experiments have been carried out on the platform of CTFEL.
This facility will greatly promote the development of THz science and its applications in material science,chemistry science,biomedicine science and many other cutting-edge areas in general.
Related Results
Theoretical and experimental investigation of femtosecond laser processing fused silica
Theoretical and experimental investigation of femtosecond laser processing fused silica
By tracking the spatiotemporal distribution of the free electron density/temperature and laser intensity, the ablation threshold, depth and crater shape of fused silica for femtose...
Graphene-Based Plasmonic Terahertz Laser Transistors
Graphene-Based Plasmonic Terahertz Laser Transistors
This chapter reviews recent advances in the research of graphene-based plasmonic terahertz laser transistors. Optically or electrically pumped graphene works as a gain medium in th...
Photonic bandgap terahertz fibers based on honeycombed tubes
Photonic bandgap terahertz fibers based on honeycombed tubes
Terahertz fibers are highly applicable for short-haul stable terahertz transmissions, and thus have potential use in upgrading terahertz systems. In this paper, a photonic crystal ...
Retinal Oximetry
Retinal Oximetry
Abstract.Purpose:Malfunction of retinal blood flow or oxygenation is believed to be involved in various diseases. Among them are retinal vessel occlusions, diabetic retinopathy and...
Double resonant sum-frequency generation in an external-cavity under high-efficiency frequency conversion
Double resonant sum-frequency generation in an external-cavity under high-efficiency frequency conversion
In recent years, more than 90% of the signal laser power can be up-converted based on the high-efficiency double resonant external cavity sum-frequency generation (SFG), especially...
Dual Laser Method for Experimentally Weathering Planetary Regoliths
Dual Laser Method for Experimentally Weathering Planetary Regoliths
<p>Experimental space weathering&#8212;whether laser, thermal reduction, impact, or ion based&#8212;is a critical endeavor to accurately interpret spa...
Excimer Laser Micromachining of MEMS Materials
Excimer Laser Micromachining of MEMS Materials
Conventional photolithography-based microfabrication techniques are limited to two-dimensional fabrication and only particular materials can be used. Excimer laser micromachining e...
Development of a high intensity Mid-Ir OPCPA pumped by a HO:YLF amplifier
Development of a high intensity Mid-Ir OPCPA pumped by a HO:YLF amplifier
The continuous development of laser sources delivering ultra-short light pulses underpins much of the current progress in experimental science, particularly in the domain of physic...

