Ultrafast decoupling of the pseudogap from superconductivity in a pressurized cuprate

Fuente: arXiv
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Main Authors: Meng, Yanghao, Mao, Wenjin, Chen, Liucheng, Chia, Elbert E. M., Yang, Yifeng, Luo, Jianlin, Zhao, Lin, Zhou, Xingjiang, Yu, Xiaohui, Wang, Xinbo
Format: Preprint
Published: 2026
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author Meng, Yanghao
Mao, Wenjin
Chen, Liucheng
Chia, Elbert E. M.
Yang, Yifeng
Luo, Jianlin
Zhao, Lin
Zhou, Xingjiang
Yu, Xiaohui
Wang, Xinbo
author_facet Meng, Yanghao
Mao, Wenjin
Chen, Liucheng
Chia, Elbert E. M.
Yang, Yifeng
Luo, Jianlin
Zhao, Lin
Zhou, Xingjiang
Yu, Xiaohui
Wang, Xinbo
contents The relationship between the pseudogap and superconductivity remains a central puzzle in the physics of cuprates. Hydrostatic pressure provides a clean tuning parameter free from chemical disorder, yet probing the microscopic energy scales of these phases under compression has remained experimentally challenging. Here, we utilize ultrafast optical spectroscopy to construct the high-pressure phase diagram of the underdoped cuprate Bi$_2$Sr$_2$CaCu$_2$O$_{8+δ}$ up to 37 GPa. Our results reveal a striking dichotomy within the pseudogap state: while the onset temperature $T^*$ rises monotonically with pressure, the energy gap $Δ_{\mathrm{PG}}$ is continuously suppressed. In contrast, the critical temperature $T_{\mathrm{c}}$ and the superconducting gap $Δ_{\mathrm{SC}}$ trace a correlated dome-like trajectory, demonstrating that superconductivity evolves independently from the pseudogap. Furthermore, an abrupt collapse of the gap ratio $2Δ_{\mathrm{SC}}/k_{\mathrm{B}}T_{\mathrm{c}}$ near 8 GPa marks a pressure-driven dimensional crossover, quenching two-dimensional phase fluctuations to stabilize global three-dimensional coherence. Upon reaching 37 GPa, the superconducting condensate is completely quenched into an insulating-like state. By resolving the extended phase evolution, our findings disentangle the pseudogap and superconducting orders, establishing a rigorous experimental basis for the pairing mechanism of high-temperature superconductivity.
format Preprint
id arxiv_https___arxiv_org_abs_2604_10207
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Ultrafast decoupling of the pseudogap from superconductivity in a pressurized cuprate
Meng, Yanghao
Mao, Wenjin
Chen, Liucheng
Chia, Elbert E. M.
Yang, Yifeng
Luo, Jianlin
Zhao, Lin
Zhou, Xingjiang
Yu, Xiaohui
Wang, Xinbo
Superconductivity
Strongly Correlated Electrons
Optics
The relationship between the pseudogap and superconductivity remains a central puzzle in the physics of cuprates. Hydrostatic pressure provides a clean tuning parameter free from chemical disorder, yet probing the microscopic energy scales of these phases under compression has remained experimentally challenging. Here, we utilize ultrafast optical spectroscopy to construct the high-pressure phase diagram of the underdoped cuprate Bi$_2$Sr$_2$CaCu$_2$O$_{8+δ}$ up to 37 GPa. Our results reveal a striking dichotomy within the pseudogap state: while the onset temperature $T^*$ rises monotonically with pressure, the energy gap $Δ_{\mathrm{PG}}$ is continuously suppressed. In contrast, the critical temperature $T_{\mathrm{c}}$ and the superconducting gap $Δ_{\mathrm{SC}}$ trace a correlated dome-like trajectory, demonstrating that superconductivity evolves independently from the pseudogap. Furthermore, an abrupt collapse of the gap ratio $2Δ_{\mathrm{SC}}/k_{\mathrm{B}}T_{\mathrm{c}}$ near 8 GPa marks a pressure-driven dimensional crossover, quenching two-dimensional phase fluctuations to stabilize global three-dimensional coherence. Upon reaching 37 GPa, the superconducting condensate is completely quenched into an insulating-like state. By resolving the extended phase evolution, our findings disentangle the pseudogap and superconducting orders, establishing a rigorous experimental basis for the pairing mechanism of high-temperature superconductivity.
title Ultrafast decoupling of the pseudogap from superconductivity in a pressurized cuprate
topic Superconductivity
Strongly Correlated Electrons
Optics
url https://arxiv.org/abs/2604.10207