{"title":"Bulk superconductivity near 40 K in hole-doped SmNiO2 at ambient pressure","authors":"S. Lin Er Chow, Zhaoyang Luo, A. Ariando","doi":"10.1038/s41586-025-08893-4","DOIUrl":null,"url":null,"abstract":"<p>The discovery of superconductivity in the Ba-La-Cu-O system (the cuprate) in the 30 K range marked a significant breakthrough, which inspired extensive explorations of oxide based layered superconductors to identify electron pairing with higher critical temperatures (<i>T</i><sub>c</sub>)<sup>1</sup>. Despite recent observations of superconductivity in nickel-oxide-based compounds (the nickelates), evidence of Cooper pairing above 30 K in a system that is isostructural to the cuprates, but without copper, at ambient pressure and without lattice compression, has remained elusive<sup>2–5</sup>. Here, we report superconductivity with a <i>T</i><sub><i>c</i></sub> approaching 40 K under ambient pressure in the <i>d</i><sup>9-<i>x</i></sup> hole-doped, late rare-earth infinite-layer nickel oxide (Sm-Eu-Ca-Sr)NiO<sub>2</sub> thin films with negligible lattice compression, supported by observations of a zero resistance state at 31 K and the Meissner effect. The material can be synthesized with essentially no Ruddlesden–Popper type structural defects, exhibiting ultralow resistivity of ~ 0.01 mΩ∙cm with a residual-resistivity-ratio of up to 10. Our findings demonstrate the potential of achieving high-temperature superconductivity using strongly correlated <i>d</i>-electron metal oxides beyond copper as the building blocks for superconductivity, offering a promising platform for further exploration and understanding of high-temperature Cooper pairing.</p>","PeriodicalId":18787,"journal":{"name":"Nature","volume":"36 1","pages":""},"PeriodicalIF":50.5000,"publicationDate":"2025-03-20","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Nature","FirstCategoryId":"103","ListUrlMain":"https://doi.org/10.1038/s41586-025-08893-4","RegionNum":1,"RegionCategory":"综合性期刊","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"MULTIDISCIPLINARY SCIENCES","Score":null,"Total":0}
引用次数: 0
摘要
Ba-La-Cu-O 系统(铜酸盐)在 30 K 范围内的超导电性的发现标志着一项重大突破,激发了人们对基于氧化物的层状超导体的广泛探索,以确定临界温度(Tc)更高的电子配对1。尽管最近在镍氧化物基化合物(镍酸盐)中观察到了超导现象,但在一个与铜酸盐结构相同但不含铜的体系中,在环境压力和无晶格压缩的条件下,库珀配对温度超过 30 K 的证据仍然难以获得2-5。在此,我们报告了掺杂 d9-x 孔的晚期稀土无限层氧化镍 (Sm-Eu-Ca-Sr)NiO2 薄膜在环境压力下的超导性,其 Tc 接近 40 K,晶格压缩可忽略不计。这种材料在合成过程中基本上不存在 Ruddlesden-Popper 类型的结构缺陷,具有 ~ 0.01 mΩ∙cm 的超低电阻率和高达 10 的残余电阻率比。我们的研究结果证明了利用铜以外的强相关 d 电子金属氧化物作为超导构件实现高温超导的潜力,为进一步探索和理解高温库珀配对提供了一个前景广阔的平台。
Bulk superconductivity near 40 K in hole-doped SmNiO2 at ambient pressure
The discovery of superconductivity in the Ba-La-Cu-O system (the cuprate) in the 30 K range marked a significant breakthrough, which inspired extensive explorations of oxide based layered superconductors to identify electron pairing with higher critical temperatures (Tc)1. Despite recent observations of superconductivity in nickel-oxide-based compounds (the nickelates), evidence of Cooper pairing above 30 K in a system that is isostructural to the cuprates, but without copper, at ambient pressure and without lattice compression, has remained elusive2–5. Here, we report superconductivity with a Tc approaching 40 K under ambient pressure in the d9-x hole-doped, late rare-earth infinite-layer nickel oxide (Sm-Eu-Ca-Sr)NiO2 thin films with negligible lattice compression, supported by observations of a zero resistance state at 31 K and the Meissner effect. The material can be synthesized with essentially no Ruddlesden–Popper type structural defects, exhibiting ultralow resistivity of ~ 0.01 mΩ∙cm with a residual-resistivity-ratio of up to 10. Our findings demonstrate the potential of achieving high-temperature superconductivity using strongly correlated d-electron metal oxides beyond copper as the building blocks for superconductivity, offering a promising platform for further exploration and understanding of high-temperature Cooper pairing.
期刊介绍:
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