de Abajo F Javier García, Basov D N, Koppens Frank H L, Orsini Lorenzo, Ceccanti Matteo, Castilla Sebastián, Cavicchi Lorenzo, Polini Marco, Gonçalves P A D, Costa A T, Peres N M R, Mortensen N Asger, Bharadwaj Sathwik, Jacob Zubin, Schuck P J, Pasupathy A N, Delor Milan, Liu M K, Mugarza Aitor, Merino Pablo, Cuxart Marc G, Chávez-Angel Emigdio, Švec Martin, Tizei Luiz H G, Dirnberger Florian, Deng Hui, Schneider Christian, Menon Vinod, Deilmann Thorsten, Chernikov Alexey, Thygesen Kristian S, Abate Yohannes, Terrones Mauricio, Sangwan Vinod K, Hersam Mark C, Yu Leo, Chen Xueqi, Heinz Tony F, Murthy Puneet, Kroner Martin, Smolenski Tomasz, Thureja Deepankur, Chervy Thibault, Genco Armando, Trovatello Chiara, Cerullo Giulio, Dal Conte Stefano, Timmer Daniel, De Sio Antonietta, Lienau Christoph, Shang Nianze, Hong Hao, Liu Kaihui, Sun Zhipei, Rozema Lee A, Walther Philip, Alù Andrea, Marini Andrea, Cotrufo Michele, Queiroz Raquel, Zhu X-Y, Cox Joel D, Dias Eduardo J C, Echarri Álvaro Rodríguez, Iyikanat Fadil, Herrmann Paul, Tornow Nele, Klimmer Sebastian, Wilhelm Jan, Soavi Giancarlo, Sun Zeyuan, Wu Shiwei, Xiong Ying, Matsyshyn Oles, Krishna Kumar Roshan, Song Justin C W, Bucher Tomer, Gorlach Alexey, Tsesses Shai, Kaminer Ido, Schwab Julian, Mangold Florian, Giessen Harald, Sánchez M Sánchez, Efetov D K, Low T, Gómez-Santos G, Stauber T, Álvarez-Pérez Gonzalo, Duan Jiahua, Martín-Moreno Luis, Paarmann Alexander, Caldwell Joshua D, Nikitin Alexey Y, Alonso-González Pablo, Mueller Niclas S, Volkov Valentyn, Jariwala Deep, Shegai Timur, van de Groep Jorik, Boltasseva Alexandra, Bondarev Igor V, Shalaev Vladimir M, Simon Jeffrey, Fruhling Colton, Shen Guangzhen, Novko Dino, Tan Shijing, Wang Bing, Petek Hrvoje, Mkhitaryan Vahagn, Yu Renwen, Manjavacas Alejandro, Ortega J Enrique, Cheng Xu, Tian Ruijuan, Mao Dong, Van Thourhout Dries, Gan Xuetao, Dai Qing, Sternbach Aaron, Zhou You, Hafezi Mohammad, Litvinov Dmitrii, Grzeszczyk Magdalena, Novoselov Kostya S, Koperski Maciej, Papadopoulos Sotirios, Novotny Lukas, Viti Leonardo, Vitiello Miriam Serena, Cottam Nathan D, Dewes Benjamin T, Makarovsky Oleg, Patanè Amalia, Song Yihao, Cai Mingyang, Chen Jiazhen, Naveh Doron, Jang Houk, Park Suji, Xia Fengnian, Jenke Philipp K, Bajo Josip, Braun Benjamin, Burch Kenneth S, Zhao Liuyan, Xu Xiaodong
ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels, Barcelona, Spain.
ICREA-Institució Catalana de Recerca i Estudis Avançats, Passeig Lluís Companys 23, 08010 Barcelona, Spain.
ACS Photonics. 2025 Jul 24;12(8):3961-4095. doi: 10.1021/acsphotonics.5c00353. eCollection 2025 Aug 20.
Triggered by advances in atomic-layer exfoliation and growth techniques, along with the identification of a wide range of extraordinary physical properties in self-standing films consisting of one or a few atomic layers, two-dimensional (2D) materials such as graphene, transition metal dichalcogenides (TMDs), and other van der Waals (vdW) crystals now constitute a broad research field expanding in multiple directions through the combination of layer stacking and twisting, nanofabrication, surface-science methods, and integration into nanostructured environments. Photonics encompasses a multidisciplinary subset of those directions, where 2D materials contribute remarkable nonlinearities, long-lived and ultraconfined polaritons, strong excitons, topological and chiral effects, susceptibility to external stimuli, accessibility, robustness, and a completely new range of photonic materials based on layer stacking, gating, and the formation of moiré patterns. These properties are being leveraged to develop applications in electro-optical modulation, light emission and detection, imaging and metasurfaces, integrated optics, sensing, and quantum physics across a broad spectral range extending from the far-infrared to the ultraviolet, as well as enabling hybridization with spin and momentum textures of electronic band structures and magnetic degrees of freedom. The rapid expansion of photonics with 2D materials as a dynamic research arena is yielding breakthroughs, which this Roadmap summarizes while identifying challenges and opportunities for future goals and how to meet them through a wide collection of topical sections prepared by leading practitioners.
受原子层剥离和生长技术进步的推动,以及在由一层或几层原子层组成的独立薄膜中发现了广泛的非凡物理特性,石墨烯、过渡金属二卤化物(TMDs)和其他范德华(vdW)晶体等二维(2D)材料如今构成了一个广泛的研究领域,通过层堆叠和扭曲、纳米制造、表面科学方法以及集成到纳米结构环境等方式在多个方向上不断扩展。光子学涵盖了这些方向中的一个多学科子集,其中二维材料具有显著的非线性、长寿命和超受限极化子、强激子、拓扑和手性效应、对外部刺激的敏感性、可及性、稳健性,以及基于层堆叠、门控和莫尔图案形成的全新光子材料范围。这些特性正被用于开发从远红外到紫外的广泛光谱范围内的电光调制、光发射与检测、成像与超表面、集成光学、传感和量子物理等方面的应用,同时还能与电子能带结构的自旋和动量纹理以及磁自由度实现杂交。以二维材料作为动态研究领域的光子学的迅速扩展正在产生突破,本路线图总结了这些突破,同时确定了未来目标面临的挑战和机遇,以及如何通过由领先从业者编写的大量主题章节来应对这些挑战和机遇。