Designing artificial two-dimensional landscapes via atomic-layer substitution

Author:

Guo Yunfan,Lin YuxuanORCID,Xie Kaichen,Yuan Biao,Zhu Jiadi,Shen Pin-Chun,Lu Ang-Yu,Su Cong,Shi Enzheng,Zhang Kunyan,HuangFu Changan,Xu Haowei,Cai Zhengyang,Park Ji-HoonORCID,Ji Qingqing,Wang Jiangtao,Dai XiaochuanORCID,Tian Xuezeng,Huang Shengxi,Dou Letian,Jiao Liying,Li JuORCID,Yu Yi,Idrobo Juan-Carlos,Cao Ting,Palacios Tomás,Kong JingORCID

Abstract

Technology advancements in history have often been propelled by material innovations. In recent years, two-dimensional (2D) materials have attracted substantial interest as an ideal platform to construct atomic-level material architectures. In this work, we design a reaction pathway steered in a very different energy landscape, in contrast to typical thermal chemical vapor deposition method in high temperature, to enable room-temperature atomic-layer substitution (RT-ALS). First-principle calculations elucidate how the RT-ALS process is overall exothermic in energy and only has a small reaction barrier, facilitating the reaction to occur at room temperature. As a result, a variety of Janus monolayer transition metal dichalcogenides with vertical dipole could be universally realized. In particular, the RT-ALS strategy can be combined with lithography and flip-transfer to enable programmable in-plane multiheterostructures with different out-of-plane crystal symmetry and electric polarization. Various characterizations have confirmed the fidelity of the precise single atomic layer conversion. Our approach for designing an artificial 2D landscape at selective locations of a single layer of atoms can lead to unique electronic, photonic, and mechanical properties previously not found in nature. This opens a new paradigm for future material design, enabling structures and properties for unexplored territories.

Funder

AFOSR MURI

DOE | SC | Basic Energy Sciences

Army Research Office

NSF STC Center for Integrated Quantum Materials

U. S. Army Research Office through the Institute for Soldier Nanotechnologies at MIT

NSF

NSFC

DOD | United States Navy | ONR | Office of Naval Research Global

Office of Naval Research MURI

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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