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March 12, 2026Proceedings of the National Academy of Sciences7 citationsOpen Access

Ambient-pressure 151-K superconductivity in HgBa 2 Ca 2 Cu 3 O 8+δ via pressure quench

LDLiangzi DengTHThacien HabamahoroASArtin Safezoddeh

Key Points

  • To address the plateau in ambient-pressure superconductivity by achieving a higher transition temperature.
  • Developed a pressure-quench protocol to stabilize superconducting states at ambient pressure
  • Applied synchrotron X-ray diffraction measurements for structural analysis
  • Conducted phonon and electronic structure calculations to support findings
  • Achieved a record ambient-pressure transition temperature of 151 K
  • Demonstrated feasibility of stabilizing high-Tc superconductivity at ambient conditions
  • Identified potential for exploring previously inaccessible quantum states

Abstract

Superconductivity has been a vigorously researched topic since its discovery in 1911. Raising the superconducting transition temperature (Tc) has been the main driving force behind such long-sustained efforts due to its potential for impacting humanity and the fundamental knowledge gained from understanding this macroscopic coherent quantum state at high temperatures. The successful development of high-Tc superconductivity will make possible extraordinarily efficient generation, delivery, and utilization of energy and could also enable the development of controlled fusion while impacting other burgeoning fields like quantum computation and quantum electronics. However, progress has been hindered by a longstanding plateau in the record ambient-pressure Tc, unchanged since 1993. Subsequent significant advancements in Tc have been achieved only under high pressures, preventing the realization of superconductivity's full potential. To directly address this challenge, we developed a pressure-quench protocol (PQP) to stabilize pressure-induced/-enhanced superconducting states at ambient pressure. Here, we achieve a record ambient-pressure Tc of 151 K in the cuprate HgBa2Ca2Cu3O8+δ via PQP. The experimental results are further supported by synchrotron X-ray diffraction measurements and phonon and electronic structure calculations. This breakthrough opens avenues for stabilizing and exploring ambient-pressure high-Tc superconducting states and other quantum states that have been previously only accessible under pressure, paving the way for deeper understanding and practical applications of high-Tc superconductivity and beyond.

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Cite This Study

Deng et al. (2026) studied this question.

synapsesocial.com/papers/69b2589696eeacc4fcec864ehttps://doi.org/10.1073/pnas.2536178123
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