This paper presents a new small-signal model for double-channel (DC)-high-electron-mobility transistors, developed through an analysis of the unique coupling effects between channels in devices. Unlike conventional single-channel HEMTs, where electrons only transport laterally in the channel, DC-HEMTs exhibit additional vertical transport between the two channels along the material direction. This double-channel coupling effect significantly limits the applicability of traditional small-signal models to DC-HEMTs. Firstly, the coupling effect between the two channels is characterized by introducing the double-channel coupling sub-model, which consists of , , and . At the same time, by introducing parameters gm and gm, the new model can accurately characterize the properties of double channels. Secondly, initial values for , , and are calculated based on the device's physical structure and material properties. Similarly, initial values for and are derived from the device's DC measurement and TCAD simulation results. Furthermore, a comprehensive parameter extraction method enables the optimized extraction of intrinsic parameters, completing the model's construction. Finally, validation of the model's fitting reveals a significantly reduced error compared to traditional small-signal models. This enhanced accuracy not only verifies the precise representation of the device's physical characteristics but also demonstrates the model's effectiveness.
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http://dx.doi.org/10.3390/mi16020200 | DOI Listing |
Micromachines (Basel)
February 2025
The State Key Discipline Laboratory of Wide Band Gap Semiconductor Technology, Faculty of Integrated Circuit, Xidian University, Xi'an 710071, China.
This paper presents a new small-signal model for double-channel (DC)-high-electron-mobility transistors, developed through an analysis of the unique coupling effects between channels in devices. Unlike conventional single-channel HEMTs, where electrons only transport laterally in the channel, DC-HEMTs exhibit additional vertical transport between the two channels along the material direction. This double-channel coupling effect significantly limits the applicability of traditional small-signal models to DC-HEMTs.
View Article and Find Full Text PDFAnnu Int Conf IEEE Eng Med Biol Soc
July 2024
The dedicated RF coil for phosphorus magnetic resonance spectrum (P MRS) was designed as a double-channel transceiver integrated surface coil structure. It features a semi-curved "pillow" shape, specifically tailored to capture phosphorus magnetic resonance spectroscopy signals in the occipital lobe of the human brain at high magnetic field strength (3T). Through RF magnetic simulation and bench tests, it has been demonstrated that the two channels of the coil exhibit excellent resonance and matching properties at the 3T P NMR frequency.
View Article and Find Full Text PDFAnalyst
November 2024
School of Electronic Engineering and Intelligent Manufacturing, Anqing Normal University, Anqing 246133, China.
A double-channel methane (CH) sensor was developed using a dual-pass multipass cell (DP-MPC) and a novel method that combines averaging dual-channel concentration signals with optimized detector gain configuration. This DP-MPC features two input/output coupling holes, resulting in absorption path lengths of approximately 95.8 m and 35.
View Article and Find Full Text PDFJ Colloid Interface Sci
September 2024
School of Chemistry and Chemical Engineering, Yancheng Institute of Technology, Jiangsu, China. Electronic address:
Photothermal synergistic catalysis is a novel technology that converts energy. In this study, ZnInS with S-vacancy (ZIS-Vs) is combined with Nickel, Nickle Oxide and Carbon Nanofiber aggregates (Ni-NiO@CNFs) to create a multi-interface coupled photocatalyst with double Schottky barrier, double channel and mixed photothermal conversion effect. Theoretical calculation confirms that the Gibbs free energy (ΔG) of the S-scheme heterojunction in the composite material is -0.
View Article and Find Full Text PDFPLoS One
August 2023
School of Water Conservancy and Civil Engineering, Zhengzhou University, Zhengzhou, China.
At present, the crude fluid-structure interaction analysis model cannot accurately characterize the interaction mechanism between aqueduct and water under earthquake action. In order to solve this problem, this paper analyzes the seismic response of the double-tank aqueduct under the action of earthquake by using the shaker test and the VOF (Volume of Fluid) method considering the free liquid level from the perspective of fluid-solid bidirectional coupling, explores whether the liquid movement in the double tank is consistent and the shock absorption effect of different water levels on the aqueduct, and analyzes the amplitude of free liquid level sloshing and the change of horizontal dynamic pressure caused by water level change from the generation mechanism of TLD (Liquid tuning dampers). The results show that the liquid movement in the two tanks in the double-channel aqueduct is basically the same under the action of earthquake, and the TLD effect of the liquid gradually increases with the increase of the water level in the aqueduct, and the maximum peak shock absorption rate is 63.
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