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High Temperature Superconductivity Dominated by Inner Underdoped CuO2_2 Planes in Quadruple-Layer Cuprate (Cu,C)Ba2_2Ca3_3Cu4_4O11+δ_{11+δ}

Published 5 Jul 2025 in cond-mat.supr-con | (2507.03921v1)

Abstract: The superconducting transition temperature (TcT_{\mathrm{c}}) of trilayer or quadruple-layer cuprates typically surpasses that of single-layer or bilayer systems. This observation is often interpreted within the composite picture", where strong proximity effect between inner CuO2_2 planes (IPs) and outer CuO2_2 planes (OPs) is crucial. Albeit intriguing, a straightforward scrutinization of this composite picture is still lacking. In this study, using angle-resolved photoemission spectroscopy to investigate (Cu,C)Ba2_2Ca3_3Cu4_4O11+δ_{11+\delta} (CuC-1234) with a high TcT_{\mathrm{c}} of 110~K, we found that the OPs are not superconducting at the TcT_{\mathrm{c}} of the material. Instead, the large pairing strength and phase coherence concurrently emerge at the underdoped IPs, suggesting that the high TcT_{\mathrm{c}} is primarily driven by these underdoped IPs. Given that the TcT_{\mathrm{c}} of CuC-1234 is comparable to other trilayer or quadruple-layer cuprates, our findings suggest that the conventionalcomposite picture" is not universally required for achieving high TcT_{\mathrm{c}}. More importantly, we demonstrate that CuO<em>2<em>2 planes free of apical oxygen can support superconductivity up to 110~K even at a doping level of 0.07 holes per Cu, a level that lies deep in the underdoped regime of single- and bilayer cuprates. These findings provide new insights into the origin of high T</em>cT</em>{\mathrm{c}} in multilayer cuprates.

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