Expansion of Momentum Space and Full 2$π$ Solid Angle Photoelectron Collection in Laser-Based Angle-Resolved Photoemission Spectroscopy by Applying Sample Bias
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| Main Authors: | , , , , , , , , , , , , , , , , , , , , |
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| Format: | Preprint |
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2025
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| _version_ | 1866910069898084352 |
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| author | Miao, Taimin Xu, Yu Liang, Bo Zhu, Wenpei Cai, Neng Xu, Mingkai Wu, Di Gu, Hongze Mao, Wenjin Zhang, Shenjin Zhang, Fengfeng Yang, Feng Wang, Zhimin Peng, Qinjun Xu, Zuyan Zhu, Zhihai Li, Xintong Mao, Hanqing Zhao, Lin Liu, Guodong Zhou, X. J. |
| author_facet | Miao, Taimin Xu, Yu Liang, Bo Zhu, Wenpei Cai, Neng Xu, Mingkai Wu, Di Gu, Hongze Mao, Wenjin Zhang, Shenjin Zhang, Fengfeng Yang, Feng Wang, Zhimin Peng, Qinjun Xu, Zuyan Zhu, Zhihai Li, Xintong Mao, Hanqing Zhao, Lin Liu, Guodong Zhou, X. J. |
| contents | Angle-resolved photoemission spectroscopy (ARPES) directly probes the energy and momentum of electrons in quantum materials, but conventional setups capture only a small fraction of the full 2$π$ solid angle. This limitation is acute in laser-based ARPES, where the low photon energy restricts momentum space despite ultrahigh resolution. Here we present systematic studies of bias ARPES, where applying a sample bias expands the accessible momentum range and enables full 2$π$ solid angle collection in two dimension using our 6.994 eV laser source. An analytical conversion relation is established and validated to accurately map the detector angle to the emission angle and the electron momentum in two dimensions. A precise approach is developed to determine the sample work function which is critical in the angle-momentum conversion of the bias ARPES experiments. Energy and angular resolutions are preserved under biases up to 100 V, and minimizing beam size is shown to be crucial. The technique is effective both near normal and off-normal geometries, allowing flexible Brillouin zone access with lower biases. Bias ARPES thus elevates laser ARPES to a new level, extending momentum coverage while retaining high resolution, and is applicable across a broad photon-energy range. |
| format | Preprint |
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arxiv_https___arxiv_org_abs_2511_19064 |
| institution | arXiv |
| publishDate | 2025 |
| record_format | arxiv |
| spellingShingle | Expansion of Momentum Space and Full 2$π$ Solid Angle Photoelectron Collection in Laser-Based Angle-Resolved Photoemission Spectroscopy by Applying Sample Bias Miao, Taimin Xu, Yu Liang, Bo Zhu, Wenpei Cai, Neng Xu, Mingkai Wu, Di Gu, Hongze Mao, Wenjin Zhang, Shenjin Zhang, Fengfeng Yang, Feng Wang, Zhimin Peng, Qinjun Xu, Zuyan Zhu, Zhihai Li, Xintong Mao, Hanqing Zhao, Lin Liu, Guodong Zhou, X. J. Superconductivity Strongly Correlated Electrons Angle-resolved photoemission spectroscopy (ARPES) directly probes the energy and momentum of electrons in quantum materials, but conventional setups capture only a small fraction of the full 2$π$ solid angle. This limitation is acute in laser-based ARPES, where the low photon energy restricts momentum space despite ultrahigh resolution. Here we present systematic studies of bias ARPES, where applying a sample bias expands the accessible momentum range and enables full 2$π$ solid angle collection in two dimension using our 6.994 eV laser source. An analytical conversion relation is established and validated to accurately map the detector angle to the emission angle and the electron momentum in two dimensions. A precise approach is developed to determine the sample work function which is critical in the angle-momentum conversion of the bias ARPES experiments. Energy and angular resolutions are preserved under biases up to 100 V, and minimizing beam size is shown to be crucial. The technique is effective both near normal and off-normal geometries, allowing flexible Brillouin zone access with lower biases. Bias ARPES thus elevates laser ARPES to a new level, extending momentum coverage while retaining high resolution, and is applicable across a broad photon-energy range. |
| title | Expansion of Momentum Space and Full 2$π$ Solid Angle Photoelectron Collection in Laser-Based Angle-Resolved Photoemission Spectroscopy by Applying Sample Bias |
| topic | Superconductivity Strongly Correlated Electrons |
| url | https://arxiv.org/abs/2511.19064 |