Direkt zum Inhalt

Seyler, Kyle L. ; Soavi, Giancarlo ; Weber, Bent ; Das, Sunit ; Agarwal, Amit ; Paradisanos, Ioannis ; Glazov, Mikhail M. ; Dogadov, Oleg ; Gucci, Francesco ; Cerullo, Giulio ; Dal Conte, Stefano ; Biswas, Shubhadeep ; Wilhelm, Jan ; Žutić, Igor ; Denisov, Konstantin S. ; Zhou, Tong ; Zheng, Huiyuan ; Yao, Wang ; Yu, Hongyi ; Cao, Ting ; Waters, Dacen ; Yankowitz, Matthew ; Burkard, Guido ; Denisov, Artem ; Ihn, Thomas ; Ensslin, Klaus ; Gaudreau, Louis ; Boddison-Chouinard, Justin ; Fedorova, Zlata ; Staude, Isabelle ; Goh, Kuan Eng Johnson ; Zhou, Zhichao ; Li, Xiao

Valleytronics in 2D Materials Roadmap

Artikel

Seyler, Kyle L., Soavi, Giancarlo, Weber, Bent, Das, Sunit, Agarwal, Amit, Paradisanos, Ioannis, Glazov, Mikhail M. , Dogadov, Oleg, Gucci, Francesco, Cerullo, Giulio, Dal Conte, Stefano, Biswas, Shubhadeep, Wilhelm, Jan , Žutić, Igor, Denisov, Konstantin S., Zhou, Tong, Zheng, Huiyuan, Yao, Wang, Yu, Hongyi, Cao, Ting, Waters, Dacen, Yankowitz, Matthew, Burkard, Guido, Denisov, Artem, Ihn, Thomas , Ensslin, Klaus, Gaudreau, Louis, Boddison-Chouinard, Justin, Fedorova, Zlata, Staude, Isabelle, Goh, Kuan Eng Johnson, Zhou, Zhichao und Li, Xiao (2026) Valleytronics in 2D Materials Roadmap. arXiv. (Eingereicht)

DOI zum Zitieren dieses Dokuments: 10.5283/epub.80901


Zusammenfassung

Valleytronics exploits non-equivalent energy extrema in the electronic band structure of crystalline solids -- the valley degree of freedom -- to encode, manipulate, and read out information. The advent of 2D materials, first graphene and then transition-metal dichalcogenides, made valley control practical through optical, electrical, and magnetic routes. This foundation has enabled remarkable ...

Valleytronics exploits non-equivalent energy extrema in the electronic band structure of crystalline solids -- the valley degree of freedom -- to encode, manipulate, and read out information. The advent of 2D materials, first graphene and then transition-metal dichalcogenides, made valley control practical through optical, electrical, and magnetic routes. This foundation has enabled remarkable progress in recent years spanning established frontiers, such as valley exciton physics and valley Hall effects, as well as emerging directions including lightwave valleytronics, nanophotonic integration, flat-band valleytronics, and spin-valley qubits. In parallel, there are sustained efforts to scale up valleytronic materials and to predict new valleytronic platforms. This Roadmap brings together perspectives from leading experts to chart the key opportunities and challenges at the forefront of 2D material valleytronics. Each section captures a snapshot of progress in a key research area, identifies critical open challenges, and outlines pathways toward future valleytronics breakthroughs.



Beteiligte Einrichtungen


Details

DokumentenartArtikel
Titel eines Journals oder einer ZeitschriftarXiv
Open Access ArtCC-Lizenz
Datum2 März 2026
Veröffentlichungsdatum07 Okt 2026 12:42
InstitutionenPhysik > Institut für Theoretische Physik
Regensburg Center for Ultrafast Nanoscopy (RUN)
Projekte
Gefördert von: Deutsche Forschungsgemeinschaft (DFG) (503985532)
Gefördert von: Deutsche Forschungsgemeinschaft (DFG) (314695032)
Identifikationsnummer
WertTyp
10.48550/arXiv.2603.01427DOI
2603.01427arXiv-ID
Dewey-Dezimal-Klassifikation500 Naturwissenschaften und Mathematik > 530 Physik
StatusEingereicht
BegutachtetNein, diese Version wurde noch nicht begutachtet (bei preprints)
An der Universität Regensburg entstandenZum Teil
URN der UB Regensburgurn:nbn:de:bvb:355-epub-809019
Dokumenten-ID80901

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