Efficient free-space to on-chip coupling of THz-bandwidth pulses for biomolecule fingerprint sensing

Author:

Qiu Yanbing,Meng Kun1,Wang Wanlin,Chen Jing,Cunningham John2ORCID,Robertson Ian2,Hong Binbin2ORCID,Wang Guo Ping

Affiliation:

1. Qingdao QUENDA Terahertz Technology Co. Ltd

2. University of Leeds

Abstract

Wide bandwidth THz pulses can be used to record the distinctive spectral fingerprints related to the vibrational or rotational modes of polycrystalline biomolecules, and can be used to resolve the time-dependent dynamics of such systems. Waveguides, owing to their tight spatial confinement of the electromagnetic fields and the longer interaction distance, are promising platforms with which to study small volumes of such systems. The efficient input of sub-ps THz pulses into waveguides is challenging owing to the wide bandwidth of the THz signal. Here, we propose a sensing chip comprised of a pair of back-to-back Vivaldi antennas feeding into, and out from, a 90° bent slotline waveguide to overcome this problem. The effective operating bandwidth of the sensing chip ranges from 0.2 to 1.15 THz, and the free-space to on-chip coupling efficiency is as high as 51% at 0.44 THz. Over the entire band, the THz signal is ∼42 dB above the noise level at room temperature, with a peak of ∼73 dB above the noise. In order to demonstrate the use of the chip, we have measured the characteristic fingerprint of α-lactose monohydrate, and its sharp absorption peak at ∼0.53 THz was successfully observed, demonstrating the promise of our technique. The chip has the merits of efficient in-plane coupling, ultra-wide bandwidth, ease-of-integration, and simple fabrication. It has the potential for large-scale manufacture, and can be a strong candidate for integration into other THz light-matter interaction platforms.

Funder

National Natural Science Foundation of China

Basic and Applied Basic Research Foundation of Guangdong Province

Special Project for Research and Development in Key areas of Guangdong Province

Shenzhen Fundamental Research Program

Engineering and Physical Sciences Research Council

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. 170 GHz quasi-optical sub-harmonic mixer with a back-to-back lenses packaging based on HDI;Optics Express;2023-10-03

2. On-chip terahertz fingerprint sensing of pesticide;2023 16th UK-Europe-China Workshop on Millimetre Waves and Terahertz Technologies (UCMMT);2023-08-31

3. Leaky-Vivaldi antenna covered with metasurface with leaky wave radiation and aperture radiation;Optics Express;2023-05-08

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