TY - JOUR
T1 - Floquet engineering-based frequency demodulation method for wireless THz short-range communications
AU - Herath, Kosala
AU - Nirmalathas, Ampalavanapillai
AU - Gunapala, Sarath D.
AU - Premaratne, Malin
N1 - Funding Information:
KH wishes to acknowledge the members of A χL at Monash University for their encouragement and support. The work of KH is supported by the Australia Government Research Training Program (RTP) and the Monash University Institute of Graduate Research.
Funding Information:
KH wishes to acknowledge the members of AχL at Monash University for their encouragement and support. The work of KH is supported by the Australia Government Research Training Program (RTP) and the Monash University Institute of Graduate Research.
Publisher Copyright:
© 2023 The Author(s). Published by IOP Publishing Ltd
PY - 2023/8/21
Y1 - 2023/8/21
N2 - This study introduces a novel theoretical framework for detecting and decoding wireless communication signals in the nanoscale range operating at terahertz (THz) frequencies. Initially, we investigate the Floquet states in a dressed 2D semiconductor quantum well and derive an analytical expression to determine its longitudinal conductivity. The results indicate that the longitudinal conductivity of a dressed 2D semiconductor can be tailored to specific requirements by manipulating the frequency of the external dressing field. Furthermore, carefully selecting the intensity and polarization type of the external dressing field enables fine-tuning and optimization of the conductivity. To evaluate the effectiveness of each dressing field configuration, we present a figure of Merit (FoM) assessment that determines the maximum possible change in conductivity within the considered frequency range. The proposed theory introduces a mechanism capable of identifying frequency-modulated communication signals in the THz range and performing frequency demodulation. We comprehensively analyze of the demodulator’s transfer function in the receiver. Consequently, we establish that the transfer function exhibits linear behavior over a specific frequency range, rendering it suitable for frequency demodulation. Finally, we provide a numerical illustration of a frequency demodulation scenario. The breakthrough uncovered in this study opens up possibilities for the development of high-efficiency, lightweight, and cutting-edge chip-scale wireless communication devices, circuits, and components.
AB - This study introduces a novel theoretical framework for detecting and decoding wireless communication signals in the nanoscale range operating at terahertz (THz) frequencies. Initially, we investigate the Floquet states in a dressed 2D semiconductor quantum well and derive an analytical expression to determine its longitudinal conductivity. The results indicate that the longitudinal conductivity of a dressed 2D semiconductor can be tailored to specific requirements by manipulating the frequency of the external dressing field. Furthermore, carefully selecting the intensity and polarization type of the external dressing field enables fine-tuning and optimization of the conductivity. To evaluate the effectiveness of each dressing field configuration, we present a figure of Merit (FoM) assessment that determines the maximum possible change in conductivity within the considered frequency range. The proposed theory introduces a mechanism capable of identifying frequency-modulated communication signals in the THz range and performing frequency demodulation. We comprehensively analyze of the demodulator’s transfer function in the receiver. Consequently, we establish that the transfer function exhibits linear behavior over a specific frequency range, rendering it suitable for frequency demodulation. Finally, we provide a numerical illustration of a frequency demodulation scenario. The breakthrough uncovered in this study opens up possibilities for the development of high-efficiency, lightweight, and cutting-edge chip-scale wireless communication devices, circuits, and components.
KW - continuous phase frequency-shift keying (CPFSK)
KW - Floquet engineering
KW - Floquet-Drude conductivity
KW - terahertz (THz) wireless communication
KW - two-dimensional (2D) semiconductor quantum well
KW - two-dimensional electron gas (2DEG)
UR - https://www.scopus.com/pages/publications/85169298870
U2 - 10.1088/1402-4896/aceebc
DO - 10.1088/1402-4896/aceebc
M3 - Article
AN - SCOPUS:85169298870
SN - 0031-8949
VL - 98
JO - Physica Scripta
JF - Physica Scripta
IS - 9
M1 - 095021
ER -