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Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook

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Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook. / Vincent, Tom; Liang, Jiayun; Singh, Simrjit et al.
In: arXiv, 26.03.2021.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Vincent, T, Liang, J, Singh, S, Castanon, E, Zhang, X, McCreary, A, Jariwala, D, Kazakova, O & Al Balushi, Z 2021, 'Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook', arXiv. https://doi.org/arXiv:2103.14194

APA

Vincent, T., Liang, J., Singh, S., Castanon, E., Zhang, X., McCreary, A., Jariwala, D., Kazakova, O., & Al Balushi, Z. (2021). Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook. arXiv. Advance online publication. https://doi.org/arXiv:2103.14194

Vancouver

Vincent T, Liang J, Singh S, Castanon E, Zhang X, McCreary A et al. Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook. arXiv. 2021 Mar 26. Epub 2021 Mar 26. doi: arXiv:2103.14194

Author

Vincent, Tom ; Liang, Jiayun ; Singh, Simrjit et al. / Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook. In: arXiv. 2021.

Bibtex

@article{8a51bddf3a8d4a529d79d70f695f005c,
title = "Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook",
abstract = "The interest in two-dimensional and layered materials continues to expand, driven by the compelling properties of individual atomic layers that can be stacked and/or twisted into synthetic heterostructures. The plethora of electronic properties as well as the emergence of many different quasiparticles, including plasmons, polaritons, trions and excitons with large, tunable binding energies that all can be controlled and modulated through electrical means has given rise to many device applications. In addition, these materials exhibit both room-temperature spin and valley polarization, magnetism, superconductivity, piezoelectricity that are intricately dependent on the composition, crystal structure, stacking, twist angle, layer number and phases of these materials. Initial results on graphene exfoliated from single bulk crystals motivated the development of wide-area, high purity synthesis and heterojunctions with atomically clean interfaces. Now by opening this design space to new synthetic two-dimensional materials {"}beyond graphene{"}, it is possible to explore uncharted opportunities in designing novel heterostructures for electrical tunable devices. To fully reveal the emerging functionalities and opportunities of these atomically thin materials in practical applications, this review highlights several representative and noteworthy research directions in the use of electrical means to tune these aforementioned physical and structural properties, with an emphasis on discussing major applications of beyond graphene 2D materials in tunable devices in the past few years and an outlook of what is to come in the next decade.",
author = "Tom Vincent and Jiayun Liang and Simrjit Singh and Eli Castanon and Xiaotian Zhang and Amber McCreary and Deep Jariwala and Olga Kazakova and {Al Balushi}, Zakaria",
year = "2021",
month = mar,
day = "26",
doi = "arXiv:2103.14194",
language = "English",
journal = "arXiv",
issn = "2331-8422",

}

RIS

TY - JOUR

T1 - Opportunities in Electrically Tunable 2D Materials Beyond Graphene: Recent Progress and Future Outlook

AU - Vincent, Tom

AU - Liang, Jiayun

AU - Singh, Simrjit

AU - Castanon, Eli

AU - Zhang, Xiaotian

AU - McCreary, Amber

AU - Jariwala, Deep

AU - Kazakova, Olga

AU - Al Balushi, Zakaria

PY - 2021/3/26

Y1 - 2021/3/26

N2 - The interest in two-dimensional and layered materials continues to expand, driven by the compelling properties of individual atomic layers that can be stacked and/or twisted into synthetic heterostructures. The plethora of electronic properties as well as the emergence of many different quasiparticles, including plasmons, polaritons, trions and excitons with large, tunable binding energies that all can be controlled and modulated through electrical means has given rise to many device applications. In addition, these materials exhibit both room-temperature spin and valley polarization, magnetism, superconductivity, piezoelectricity that are intricately dependent on the composition, crystal structure, stacking, twist angle, layer number and phases of these materials. Initial results on graphene exfoliated from single bulk crystals motivated the development of wide-area, high purity synthesis and heterojunctions with atomically clean interfaces. Now by opening this design space to new synthetic two-dimensional materials "beyond graphene", it is possible to explore uncharted opportunities in designing novel heterostructures for electrical tunable devices. To fully reveal the emerging functionalities and opportunities of these atomically thin materials in practical applications, this review highlights several representative and noteworthy research directions in the use of electrical means to tune these aforementioned physical and structural properties, with an emphasis on discussing major applications of beyond graphene 2D materials in tunable devices in the past few years and an outlook of what is to come in the next decade.

AB - The interest in two-dimensional and layered materials continues to expand, driven by the compelling properties of individual atomic layers that can be stacked and/or twisted into synthetic heterostructures. The plethora of electronic properties as well as the emergence of many different quasiparticles, including plasmons, polaritons, trions and excitons with large, tunable binding energies that all can be controlled and modulated through electrical means has given rise to many device applications. In addition, these materials exhibit both room-temperature spin and valley polarization, magnetism, superconductivity, piezoelectricity that are intricately dependent on the composition, crystal structure, stacking, twist angle, layer number and phases of these materials. Initial results on graphene exfoliated from single bulk crystals motivated the development of wide-area, high purity synthesis and heterojunctions with atomically clean interfaces. Now by opening this design space to new synthetic two-dimensional materials "beyond graphene", it is possible to explore uncharted opportunities in designing novel heterostructures for electrical tunable devices. To fully reveal the emerging functionalities and opportunities of these atomically thin materials in practical applications, this review highlights several representative and noteworthy research directions in the use of electrical means to tune these aforementioned physical and structural properties, with an emphasis on discussing major applications of beyond graphene 2D materials in tunable devices in the past few years and an outlook of what is to come in the next decade.

U2 - arXiv:2103.14194

DO - arXiv:2103.14194

M3 - Journal article

JO - arXiv

JF - arXiv

SN - 2331-8422

ER -