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◆ ACS Nano2026-01-19· Semiconductor

Contemporary Challenges in van der Waals 2D Semiconductors

Balakrishnan Kirubasankar, Ashok Mondal, Seok Joon Yun, Debottam Daw, Yongshan Xu, Lan-Anh Thi Nguyen, Yeonjeong Koo, Kamal Kumar Paul, Heemyoung Hong, Hyeongwoo Lee, Yuting Luo, Kailang Liu, Naoki Higashitarumizu, Daniel Erkensten, Chang Yun Heo, Yu‐Rim Jeon, Taemin Lee, Dae‐Hyun Nam, X Liu, Soo Min Kim, Dinh Loc Duong⧫, Qinke Wu, Deji Akinwande, Mark C. Hersam, Ali Javey, Ermin Malić, Bilu Liu, Tianyou Zhai, Heejun Yang, Kyoung-Duck Park, Ki Kang Kim, Young Hee Lee

原始摘要(英文原文)· Original abstract
van der Waals (vdW) layered semiconductors have emerged as a unique class of quantum materials distinguished from their bulk counterparts by reduced dielectric screening, strong Coulomb interactions, large exciton binding energies, strong spin-orbit coupling, and pronounced thickness-dependent band structures. These fundamental attributes have enabled the exploration of exotic many-body physics and a broad spectrum of device applications, ranging from field-effect transistors and ferroelectric switches to optoelectronics, magnetic semiconductors, neuromorphic computing, and energy harvesting systems. Despite remarkable advances, critical challenges remain in the controlled synthesis of high-quality crystals, formation of low-resistance contacts, integration of stable and scalable gate dielectrics, and reliable device performance at the wafer scale. In this mega-review, we provide a comprehensive overview of contemporary challenges and future opportunities in vdW-layered semiconductors, structured across nine themes: growth and heterostructures of transition metal dichalcogenides, Ohmic contacts, emerging gate dielectrics, high-performance low-power field-effect transistors (FETs), diluted magnetic semiconductors, plasmonics and exciton propagation, hot-carrier solar cells, bioinspired neuromorphic computing, and electrocatalytic/photocatalytic energy conversion. By consolidating fundamental insights and device-level perspectives, this review aims to chart a roadmap for advancing vdW semiconductors from laboratory-scale discoveries to transformative technologies in electronics, optoelectronics, spintronics, and sustainable energy systems.
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