Direct measurement of photocathode time response in a high-brightness photoinjector

Author:

Loisch Gregor1ORCID,Chen Ye2ORCID,Koschitzki Christian1,Qian Houjun1,Gross Matthias1ORCID,Hannah Adrian3,Hoffmann Andreas1,Kalantaryan Davit1ORCID,Krasilnikov Mikhail1,Lederer Sven2ORCID,Li Xiangkun1,Lishilin Osip1ORCID,Melkumyan David1,Monaco Laura4,Niemczyk Raffael1ORCID,Oppelt Anne1ORCID,Sertore Daniele4ORCID,Stephan Frank1ORCID,Valizadeh Reza3,Vashchenko Grygorii1ORCID,Weilbach Tobias1

Affiliation:

1. Deutsches Elektronen-Synchrotron DESY, 15738 Zeuthen, Germany

2. Deutsches Elektronen-Synchrotron DESY, 22607 Hamburg, Germany

3. ASTeC, STFC Daresbury Laboratory, Daresbury, Warrington, WA4 4AD Cheshire, United Kingdom

4. Istituto Nazionale di Fisica Nucleare, 20133 Milano, Italy

Abstract

Electron photoinjectors provide high-brightness electron beams to numerous research applications in physics, chemistry, material, and life sciences. Semiconductor photocathodes are widely used here, as they enable the production of low-emittance beams with variable charge at high repetition rates. One of the key figures of merit of photocathodes is the minimum achievable bunch length. In semiconductor cathodes, this is dominated by scattering effects and varying penetration depths of the extracting photons, which leads to a characteristic electron emission function. We present a method to determine this cathode time response with resolution on the tens of femtoseconds level, breaking the resolution barrier encountered in previous studies. The method is demonstrated with cesium-telluride (Cs2Te) and gold cathodes, revealing response times of (184 ± 41) fs up to (253 ± 58) fs for the semiconductor and an upper limit of (93 ± 17) fs for the metal. Monte Carlo simulations of Cs2Te emission benchmarked to these results give detailed information about the cathode material.

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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