Replication Data for: Terahertz topological photonics for on-chip communication (doi:10.21979/N9/NXNIDR)

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Document Description

Citation

Title:

Replication Data for: Terahertz topological photonics for on-chip communication

Identification Number:

doi:10.21979/N9/NXNIDR

Distributor:

DR-NTU (Data)

Date of Distribution:

2021-06-10

Version:

1

Bibliographic Citation:

Yang, Yihao; Yamagami, Yuichiro; Yu, Xiongbin; Pitchappa, Prakash; Webber, Julian; Zhang, Baile; Fujita, Masayuki; Nagatsuma, Tadao; Singh, Ranjan, 2021, "Replication Data for: Terahertz topological photonics for on-chip communication", https://doi.org/10.21979/N9/NXNIDR, DR-NTU (Data), V1

Study Description

Citation

Title:

Replication Data for: Terahertz topological photonics for on-chip communication

Identification Number:

doi:10.21979/N9/NXNIDR

Authoring Entity:

Yang, Yihao (Nanyang Technological University)

Yamagami, Yuichiro (Osaka University, Japan)

Yu, Xiongbin (Osaka University, Japan)

Pitchappa, Prakash (Nanyang Technological University)

Webber, Julian (Osaka University, Japan)

Zhang, Baile (Nanyang Technological University)

Fujita, Masayuki (Osaka University, Japan)

Nagatsuma, Tadao (Osaka University, Japan)

Singh, Ranjan (Nanyang Technological University)

Producer:

Yang, Yihao

Software used in Production:

Comsol, CST, Excel, Notepad, Video file

Grant Number:

MOE2017-T2-1-110

Grant Number:

MOE2018-T2-1-022 (S)

Grant Number:

MOE2016-T3-1-006(S)

Grant Number:

MOE2016-T3-1-006(S)

Grant Number:

France NRF2016-NRF-ANR004

Distributor:

DR-NTU (Data)

Access Authority:

Singh, Ranjan

Depositor:

Singh, Ranjan

Date of Deposit:

2021-06-10

Holdings Information:

https://doi.org/10.21979/N9/NXNIDR

Study Scope

Keywords:

Physics, Physics, Terahertz topological photonics, on-chip communication

Abstract:

Realisation of integrated, low-cost, and efficient solutions for high-speed, on-chip communication requires terahertz waveguides and holds tremendous potential in future information and communication technologies, including terahertz wireless communication, terahertz integrated circuits, and terahertz interconnects for intra-/inter-chip communication. However, conventional approaches to terahertz waveguiding suffer from sensitivity to defects and considerable bending losses at sharp bends. Here, building on the topological phase of light, we experimentally demonstrate robust terahertz topological valley transport on low-loss, all-silicon chip. The valley kink states are excellent information carriers due to their robustness, single-mode propagation, and linear dispersion. By leveraging on such states, we demonstrate error-free communication through a highly-twisted domain wall at an unprecedented data rate (> 10 Gbit/s) that enables real-time transmission of uncompressed 4K high-definition video. Our work provides the first experimental demonstration of the topological phases of terahertz wave, which would inspire rich research on varied topological phases with terahertz applications.

Kind of Data:

Experimental and simulation data

Methodology and Processing

Sources Statement

Data Access

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Related Publications

Citation

Identification Number:

10.1038/s41566-020-0618-9

Bibliographic Citation:

Yang, Y., Yamagami, Y., Yu, X., Pitchappa, P., Webber, J., Zhang, B., ... & Singh, R. (2020). Terahertz topological photonics for on-chip communication. Nature Photonics, 14(7), 446-451.

Citation

Identification Number:

10356/138529

Bibliographic Citation:

Yang, Y., Yamagami, Y., Yu, X., Pitchappa, P., Webber, J., Zhang, B., ... & Singh, R. (2020). Terahertz topological photonics for on-chip communication. Nature Photonics, 14(7), 446-451.

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