Collaborative Research: Evaporation-Driven Optofluidic Biosensors using Photonic Crystal Biosilica
Collaborative Research: Evaporation-Driven Optofluidic Biosensors using Photonic Crystal Biosilica
批准号:
1701339
负责人:
Hua Tan
金额:
$10.05万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-01 至 2022-08-31
中文摘要
该研究项目的目标是探索使用天然存在的硅藻来检测生物物质,硅藻是一组在自然界中发现的单细胞藻类,已被证明具有适合生物传感应用的独特特性。 这项研究可能会带来检测多种生物分子的新方法,这反过来又会对污染监测、有害物质检测和早期疾病诊断产生积极影响。 这项研究与教育和推广工作的整合有利于俄勒冈州州立大学和华盛顿州立大学温哥华分校的研究生和本科生。 纳米光子技术和微流体技术的课程主题正在被添加到这些机构的课程中,并且正在努力通过夏季研究计划扩大这些机构中代表性不足的少数民族,妇女和K-12学生的参与。在微米和纳米尺度结构中的蒸发诱导的毛细流动可以在没有外部泵的情况下维持液体流动,并且这可以是生物传感的期望特征。本研究的目的是利用硅藻光子晶体生物硅来开发一种新型的蒸发驱动的光流体生物传感器。硅藻是一组单细胞光合藻类,它们利用生物化学途径生物矿化并自组装三维光子晶体,具有独特的光子和微纳米流体特性。正在努力实现三个目标:1)研究硅藻生物二氧化硅的阵列化微米孔和纳米孔中的蒸发诱导的毛细力; 2)开发通过孔内等离子体纳米颗粒具有增强的光-物质相互作用的光流体生物传感器;以及3)使用表面增强拉曼散射(Sers)感测,实现用于痕量水平的生物标志物检测的芯片上实验室光流体感测系统,特别是用于作为过敏生物标志物的组胺。 这项研究可能会导致许多小生物分子的无标记传感,这将对污染监测,有害物质检测和早期疾病诊断产生积极影响。该项目的研究和教育部分的协同作用,有利于研究生和本科生在俄勒冈州州立大学和华盛顿州立大学温哥华分校通过提高他们的课程与纳米光子技术和微流体主题。该研究项目还包括通过夏季研究计划扩大代表性不足的少数民族,妇女和K-12学生的参与。
英文摘要
The goal of this research project is to explore sensing of biological substances using naturally occurring diatoms, which are a group of single-celled algae found in nature that have been shown to possess unique properties suitable for biosensing applications. This research could lead to new methods to detect many types of biomolecules, which would in turn positively impact pollution monitoring, hazardous material detection, and early disease diagnosis. The integration of this research with education and outreach efforts benefits both graduate and undergraduate students at Oregon State University and Washington State University-Vancouver. Programmatic topics on nanophotonic technology and microfluidics are being added to curricula of these institutions, and efforts are underway to try to broaden the participation of under-represented minorities, women and K-12 students at these institutions through the summer research programs. Evaporation-induced capillary flow in micro- and nano-scale structures can sustain a liquid flow without external pumps, and this can be a desirable feature for biosensing. The goal of this research project is to develop a new type of evaporation-driven, optofluidic biosensor using diatom photonic crystal biosilica. Diatoms are a group of single-celled photosynthetic algae that use biochemical pathways to biomineralize and self-assembled three-dimensional photonic crystals with unique photonic and micro- and nano-fluidic properties. Three aims are being pursued: 1) investigation of evaporation-induced capillary forces in the arrayed micro- and nanopores of diatom biosilica; 2) development of an optofluidic biosensor with enhanced light-matter interactions through in-pore plasmonic nanoparticles and 3) enabling a lab-on-chip optofluidic sensing system for trace level of biomarker detection, specifically for histamine as allergy biomarkers, using surface-enhanced Raman scattering (SERS) sensing. This research could lead to label-free sensing of many small biomolecules, which would positively impact pollution monitoring, hazardous material detection, and early disease diagnosis. The synergy of the research and education parts of this project benefits both graduate and undergraduate students at Oregon State University and Washington State University-Vancouver by enhancing their curricula with nanophotonic technology and microfluidics topics. The research project also has a component of broadening the participation of under-represented minorities, women and K-12 students through summer research programs.
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DOI:
10.1115/ht2019-3502
发表时间:
2019-12
期刊:
ASME 2019 Heat Transfer Summer Conference
影响因子:
--
作者:
[H. Jarrett;Micah Wade;Joseph A. Kraai;G. Rorrer;Alan X. Wang;H. Tan]
通讯作者:
H. Jarrett;Micah Wade;Joseph A. Kraai;G. Rorrer;Alan X. Wang;H. Tan
DOI:
10.2352/j.imagingsci.technol.2018.62.6.060502
发表时间:
2018-11-01
期刊:
JOURNAL OF IMAGING SCIENCE AND TECHNOLOGY
影响因子:
1
作者:
[Jiang, Huicong, AndrewMerritt, Brett, Tan, Hua]
通讯作者:
Tan, Hua
DOI:
10.1063/1.5139235
发表时间:
2020-01-01
期刊:
PHYSICS OF FLUIDS
影响因子:
4.6
作者:
[Avhad, Amit, Tan, Hua, Weislogel, Mark]
通讯作者:
Weislogel, Mark
DOI:
--
发表时间:
2022
期刊:
IMECE2022
影响因子:
--
作者:
[Md Nur E Alam, Hua Tan]
通讯作者:
Hua Tan
DOI:
10.1007/s10404-020-02343-5
发表时间:
2020-04
期刊:
Microfluidics and Nanofluidics
影响因子:
2.8
作者:
[H. Jarrett;Micah Wade;Joseph A. Kraai;G. Rorrer;Alan X. Wang;Hua Tan]
通讯作者:
H. Jarrett;Micah Wade;Joseph A. Kraai;G. Rorrer;Alan X. Wang;Hua Tan
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