Tohoku University · 공학
Wei Yu 교수의 연구실은 저비용·고감도 표면 증강 라만 분광법(SERS) 기반의 신속·정밀 화학 및 생물분석 기술을 핵심으로 하며, 종이 기반 마이크로플루이딕 장치와 잉크젯 프린팅 기술을 융합한 혁신적인 센서 플랫폼을 개발하고 있습니다. 특히, 샘플 준비의 단순화, 농축 기능, 그리고 현장 적용이 가능한 휴대성 장치를 구현함으로써 임상 진단, 환경 오염 모니터링, 농약 및 식품 유해물질 검출 등 실생활 응용에 기여하고 있습니다. 또한 리튬-산소 및 칼륨-산소 이차전지의 안정성 향상을 위한 나노구조 전극 재료 설계와 고온 합성 기반의 고성능 탄소 기반 카디오드 개발도 함께 진행 중입니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
A novel, ultra low-cost surface enhanced Raman spectroscopy (SERS) substrate has been developed by modifying the surface chemistry of cellulose paper and patterning nanoparticle arrays, all with a consumer inkjet printer. Micro/nanofabrication of SERS substrates for on-chip chemical and biomolecular analysis has been under intense investigation. However, the high cost of producing these substrates and the limited shelf life severely limit their use, especially for routine laboratory analysis and
We demonstrate a paper-based surface swab and lateral-flow dipstick that includes an inkjet-printed surface-enhanced Raman spectroscopy (SERS) substrate for analyte detection. Due to capillary-action wicking of cellulose, the paper dipstick enables extremely simple and pump-free loading of liquid samples into the detection device, and in addition provides inherent analyte concentration within the detection volume. Furthermore, the flexible nature of the paper-based SERS device also enables it to
We demonstrate an extremely simple and practical surface enhanced Raman spectroscopy (SERS) technique for trace chemical detection. Filter membranes first trap silver nanoparticles to form a SERS-active substrate and then concentrate analytes from a mL-scale sample into a μL-scale detection volume. We demonstrate a significant improvement in detection limit as compared to colloidal SERS for the pesticide malathion and the food contaminant melamine. The measured SERS intensity exhibits low variat
In principle, surface enhanced Raman spectroscopy (SERS) is thought to provide unique identification of a target analyte, even in complex samples or in the presence of multiple analytes. In practice, however, this is not always true for real-world samples due to various forms of interference. In this report, we build upon our previous work on inkjet-printed SERS substrates by using paper and polymer membranes to integrate sample cleanup and analyte separation with SERS detection. Inkjet-printed
The safety issue caused by the dendrite growth is not only a key research problem in lithium-ion batteries but also a critical concern in alkali metal (i.e., Li, Na, and K)-oxygen batteries where a solid metal is usually used as the anode. Herein, we demonstrate the first dendrite-free K-O<sub>2</sub> battery at ambient temperature based on a liquid Na-K alloy anode. The unique liquid-liquid connection between the liquid alloy and the electrolyte in our alloy anode-based battery provides a homog
The rational design of a stable and catalytic carbon cathode is crucial for the development of rechargeable lithium-oxygen (LiO<sub>2</sub> ) batteries. An edge-site-free and topological-defect-rich graphene-based material is proposed as a pure carbon cathode that drastically improves LiO<sub>2</sub> battery performance, even in the absence of extra catalysts and mediators. The proposed graphene-based material is synthesized using the advanced template technique coupled with high-temperature a
Abstract Although lithium–oxygen batteries have attracted attention due to their extremely high energy densities, rational design, and critical evaluation of high‐energy‐density cathode for practical Li–O 2 batteries is still urgently needed. Herein, the multiscale, angstrom‐to‐millimeter, precisely controllable synthesis of binder‐free cathodes with minimally stacked graphene free from edge sites is demonstrated. The proposed Li–O 2 battery, based on a hierarchically porous cathode with a pract
The formation of the insulated film-like discharge products (Li<sub>2</sub>O<sub>2</sub>) on the surface of the carbon cathode gradually hinders the oxygen reduction reaction (ORR) process, which usually leads to the premature death of the Li-O<sub>2</sub> battery. In this work, by introducing the molecular sieve powder into the ether electrolyte, the Li-O<sub>2</sub> battery exhibits a largely improved discharge capacity (63 times) compared with the one in the absence of this inorganic oxide ad