超晶格
单层
解耦(概率)
材料科学
凝聚态物理
各向异性
超导电性
热导率
拉曼光谱
气凝胶
电阻率和电导率
纳米技术
光电子学
复合材料
光学
物理
量子力学
控制工程
工程类
作者
Ruijin Sun,Jun Deng,Xiaowei Wu,Munan Hao,Ke Ma,Yuxin Ma,Changchun Zhao,Dezhong Meng,Xiaoyu Ji,Yiyang Ding,Yu Pang,Xin Qian,Ronggui Yang,Guodong Li,Zhilin Li,Linjie Dai,Tianping Ying,Huaizhou Zhao,Shixuan Du,Gang Li
标识
DOI:10.1038/s41467-023-42510-0
摘要
Abstract Interlayer decoupling plays an essential role in realizing unprecedented properties in atomically thin materials, but it remains relatively unexplored in the bulk. It is unclear how to realize a large crystal that behaves as its monolayer counterpart by artificial manipulation. Here, we construct a superlattice consisting of alternating layers of NbSe 2 and highly porous hydroxide, as a proof of principle for realizing interlayer decoupling in bulk materials. In (NaOH) 0.5 NbSe 2 , the electric decoupling is manifested by an ideal 1D insulating state along the interlayer direction. Vibration decoupling is demonstrated through the absence of interlayer models in the Raman spectrum, dominant local modes in heat capacity, low interlayer coupling energy and out-of-plane thermal conductivity (0.28 W/mK at RT) that are reduced to a few percent of NbSe 2 ’s. Consequently, a drastic enhancement of CDW transition temperature (>110 K) and Pauling-breaking 2D superconductivity is observed, suggesting that the bulk crystal behaves similarly to an exfoliated NbSe 2 monolayer. Our findings provide a route to achieve intrinsic 2D properties on a large-scale without exfoliation.
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