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Shi-Wei Qu

Publications and source records attributed to Shi-Wei Qu.

4 recordsLinked to original sources

Integrated Terahertz Photonic Receiving Frontend with Link Noise Outperforming Electronics

Terahertz technology is a key enabler for sixth-generation (6G) wireless networks, yet its application is constrained by increasingly severe free-space loss at high frequencies. To efficiently retrieve weak signals at the receiving end, a compact frontend that features both a high-gain antenna and a low-noise signal-detection chain is critical. Current transistor-based THz electronic frontends face significant challenges in meeting these demands because both on-chip antenna efficiency and transistor noise performance degrade rapidly when approaching their cut-off frequencies. Photonic technology provides an alternative solution to circumvent the transistor bandwidth limit, yet most microwave photonic links to date exhibit noise performance substantially worse than state-of-the-art electronics. Here, we demonstrate low-noise integrated THz photonic frontends that deliver undegraded link noise performance across three major THz windows from 140 to 450 GHz, and outperform electronic frontends in the upper two windows. We achieve this through co-design of high-gain on-chip THz antenna array and broadband THz-optic modulator on a single thin-film lithium niobate (TFLN) chip, leading to distributed reception of free-space THz signals and continuous coherent build-up of the THz-optic conversion process with unprecedented efficiency. Combined with an efficient heterodyne detection chain, our integrated frontends exhibit effective isotropic noise figures of 13.6 and 16.2 dB at 250 and 450 GHz, respectively, both setting new benchmarks in their respective bands. We further demonstrate 6G-oriented multi-link communication up to 20 Git/s. Our integrated frontends represent a significant step towards compact, cost-effective and energy-efficient THz wireless systems in 6G and beyond.

physics.optics

Edge Truncation Effect Suppression of Ultrawideband Phased Arrays for Radar Application

This letter presents a novel, effective method to suppress the edge truncation effect of ultrawideband tightly coupled dipole linear arrays. To restrain the edge truncation effect within an ultrawideband operating band, a new type of T-shaped metal strip with a resistor is further loaded on the array edges apart from extending the length of the overlapping patches. Besides, the excitation phase of the elements at the array edges is optimized. Full-wave simulation results show that the active standing wave standing ratio of the 2 x 16 tightly coupled dipole linear arrays using the proposed method is significantly optimized to less than 3.5 within a 5:1 [(1.2 to 6) GHz] bandwidth, while scanning up to +/-60{\deg} in the E-plane. The effectiveness of the proposed method is experimentally verified by a 2 x 16 linear array prototype.

physics.app-ph

A Compact Ultra-Wideband Circularly Polarized Antenna Based on Miniaturized Phase Shifter

In this article, a compact wideband circularly polarized antenna based on a miniaturized phase shifter with ultra-wideband operation is proposed. The proposed antenna is comprised of a pair of compact orthogonal ultra-wideband Vivaldi antennas and a miniaturized phase shifter. To achieve wideband impedance matching and miniaturization, parasitic radiation structures, metal coupled plates, and Γ-type balun with high-impedance transmission lines are designed. After optimization, the final antenna dimensions are only 0.36 lambda x 0.36 lambda x 0.34 lambda, where lambda is the free-space wavelength at the lowest operating frequency. Additionally, the miniaturized 90 degrees wideband phase shifter of the antenna is designed by employing a PI-type network and a negative group delay (NGD) network with extremely compact dimensions of 0.071 lambda x 0.047 lambda. The simulated results indicate that the antenna exhibits a 10-dB impedance bandwidth within 0.32 - 1.2 GHz (3.75:1) and a 3-dB axial ratio (AR) bandwidth within 0.32 - 1.15 GHz (3.59:1). Finally, a prototype is fabricated and reasonable agreement is achieved between the simulated and measured results.

physics.optics

Wideband Low-Scattering Dual-Polarized Phased Array with Stepped Ground

This paper proposes a wideband dual-polarized phased array with ultra-wideband scattering cross section (SCS) reduction. The antenna elements are loaded on a bilateral stepped ground. This ground is carefully designed in terms of height difference, step number, and length to achieve phase cancellation near the normal direction. Wideband dipoles with vertical electric coupling are designed. The radiation frequency band covers the X-band (40%) under VSWR < 2.8. Array patterns are synthesized with the two subarrays, covering the scanning range from -45 to +45 degrees. The monostatic SCSs of the proposed 17 x 8 array prototype have been reduced within 3.6 - 30 GHz, with an averaged reduction of over 19.4/18.9 dB and an averaged in-band reduction of over 15.4/16.6 dB, under the normal x/y polarized incident waves respectively.

physics.optics