Beyond Conventional Charge Density Wave for Strongly Enhanced 2D Superconductivity in 1H‐TaS2 Superlattices

Author:

Li Zejun123ORCID,Lyu Pin2,Chen Zhaolong45,Guan Dandan6,Yu Shuang7,Zhao Jinpei4,Huang Pengru48,Zhou Xin2,Qiu Zhizhan4,Fang Hanyan2,Hashimoto Makoto9,Lu Donghui9,Song Fei10,Loh Kian Ping2,Zheng Yi7,Shen Zhi‐Xun911,Novoselov Kostya S.4,Lu Jiong24ORCID

Affiliation:

1. Key Laboratory of Quantum Materials and Devices of Ministry of Education School of Physics Southeast University Nanjing 211189 China

2. Department of Chemistry National University of Singapore 3 Science Drive 3 Singapore 117543 Singapore

3. Purple Mountain Laboratories Nanjing 211111 China

4. Institute for Functional Intelligent Materials National University of Singapore Singapore 117544 Singapore

5. School of Advanced Materials, Peking University Shenzhen Graduate School Shenzhen 518055 China

6. Key Laboratory of Artificial Structures and Quantum Control (Ministry of Education) TD Lee Institute School of Physics and Astronomy Shanghai Jiao Tong University Shanghai 200240 China

7. Zhejiang Province Key Laboratory of Quantum Technology and Device School of Physics and State Key Laboratory of Silicon Materials Zhejiang University Hangzhou 310027 China

8. Guangxi Key Laboratory of Information Materials School of Materials Science and Engineering Guilin University of Electronic Technology Guilin 541004 China

9. Stanford Institute for Materials and Energy Sciences SLAC National Accelerator Laboratory Menlo Park CA 94025 USA

10. Shanghai Synchrotron Radiation Faciality Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201204 China

11. Geballe Laboratory for Advanced Materials Department of Physics and Applied Physics Stanford University Stanford CA 94305 USA

Abstract

AbstractNoncentrosymmetric transition metal dichalcogenide (TMD) monolayers offer a fertile platform for exploring unconventional Ising superconductivity (SC) and charge density waves (CDWs). However, the vulnerability of isolated monolayers to structural disorder and environmental oxidation often degrade their electronic coherence. Herein, an alternative approach is reported for fabricating stable and intrinsic monolayers of 1H‐TaS2 sandwiched between SnS blocks in a (SnS)1.15TaS2 van der Waals (vdW) superlattice. The SnS block layers not only decouple individual 1H‐TaS2 sublayers to endow them with monolayer‐like electronic characteristics, but also protect the 1H‐TaS2 layers from electronic degradation. The results reveal the characteristic 3 × 3 CDW order in 1H‐TaS2 sublayers associated with electronic rearrangement in the low‐lying sulfur p band, which uncovers a previously undiscovered CDW mechanism rather than the conventional Fermi surface‐related framework. Additionally, the (SnS)1.15TaS2 superlattice exhibits a strongly enhanced Ising‐like SC with a layer‐independent Tc of ≈3.0 K, comparable to that of the isolated monolayer 1H‐TaS2 sample, presumably attributed to their monolayer‐like characteristics and retained Fermi states. These results provide new insights into the long‐debated CDW order and enhanced SC of monolayer 1H‐TaS2, establishing bulk vdW superlattices as promising platforms for investigating exotic collective quantum phases in the 2D limit.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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