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Development of Elastomeric Optofluidic Devices for Lasing and Sensing

Wuzhou Song
TLDR
In this article, a batch of optofluidic devices that are based on PDMS material and soft-lithography are presented, which can provide a broad spectrum of toolbox with different optical functions that can be easily integrated into many other PDMS microfluidic chips.
Abstract
The term of optofluidics defines an emergent research field that combines microfluidics and optics. In many lab-on-a-chip applications, these two technologies are used in combining the microfluidics for sample delivery and optics for sensing and controlling. Optofluidic represents the implementation of optics in microfluidic platform that produces an unprecedented level of integration. Moreover, optofluidic devices are easily and highly reconfigurable, which can be a significant advantage to the traditional solid optical components. As an elastomer, PDMS (polydimethylsiloxane) is one of the most popular materials in microfluidics. It exhibits excellent elasticity, bio-compatibility and optical transparence. Most microfluidic chips are made of PDMS using soft lithography. And multi-layer soft lithography has enabled large-scale integration of monolithic microfluidic valves and pumps on a single chip. Thus to develop the optofluidic elements within PDMS microfluidic chip is one of the most promising and desirable ways towards further integration of optofluidic and microfluidic functions together for more complex lab-on-a-chip applications. During my doctoral research, we worked on a batch of optofluidic devices that are based on PDMS material and soft lithography. They include the optofluidic dye lasers, optofluidic interferometer, optofluidic switch, and optofluidic differential spectroscopy. Such optofluidic elements provide a broad spectrum of toolbox with different optical functions that can be easily into many other PDMS microfluidic chips. They are compatible to the conventional PDMS microfluidic chip in terms of fabrication, operation and control. And they could provide important optical functions in lab-on-a-chip systems. For examples, the optofluidic dye laser can be integrated as a widely tunable coherent source for chip-scale fluorescence spectroscopy or cell flow cytometry. The optofluidic membrane interferometer can be easily integrated into conventional PDMS microfluidic chip for multi-site pressure and flow monitoring with high precision. Optofluidic switch can compose a reconfigurable optical circuit on single microfluidic chip. Optofluidic differential spectroscopy provides a simple and highly sensitive method for in-line measuring of solution concentration. Among these devices, we have also developed and summarized a series of novel optofluidic turning methods that are controlled by pneumatic actuation. These simple turning methods also take the advantages of high precision and reliability. In addition to these elastomeric optofluidic devices, we are also working on several other optofluidic projects. In the last chapter of this thesis, we will give a partial preview of these works and also our perspective on the nano-optofluidics which represents a new trend of optofluidics.

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Citations
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Multiple internal reflection poly(dimethylsiloxane) systems for optical

A. Llobera, +1 more
TL;DR: In this paper, the authors proposed a recursive positioning of air mirrors, propagating multiple internal reflection (PMIR) systems for high-sensitivity measurements, and the results confirm the validity of the proposed system for high sensitivity measurements.
Journal Article

High-speed microfluidic differential manometer for cellular-scale hydrodynamics

TL;DR: In this article, a high-speed microfluidic approach for measuring dynamical pressure drop variations along a micrometer-sized channel was proposed and demonstrated by presenting measurements of the additional pressure drop produced at the scale of individual flowing cells.
Proceedings Article

Optofluidic 1x4 Switch

TL;DR: Optofluidic 1x4 switch made of a blazed grating in silicon elastomer integrated with microfluidic channel was designed, fabricated and tested as mentioned in this paper, and experiments show 1.7dB insertion loss, extinction ratio of 9.8dB, and response time of 60ms.

Microfluidic gas flow profiling using remote detection NMR - eScholarship

TL;DR: Remote detection of the NMR signal both overcomes the sensitivity limitation of NMR and enables time-of-flight measurement in addition to spatially resolved imaging, gaining detailed insight into the effects of flow, diffusion, and mixing in specific geometries.
References
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Journal ArticleDOI

Optofluidic evanescent dye laser based on a distributed feedback circular grating

TL;DR: In this paper, an optofluidic evanescent laser based on a solid circular distributed feedback grating with the dye solution acting as the cladding layer was demonstrated.
Journal ArticleDOI

Discrete wavelength tunable laser using microelectromechanical systems technology

TL;DR: In this paper, a discrete wavelength tunable laser was demonstrated using microelectromechanical systems (MEMS) technology, which is formed by integrating a semiconductor laser, a singlemode optical fiber, and a MEMS mirror onto a single chip.
Journal ArticleDOI

Low-order distributed feedback optofluidic dye laser with reduced threshold

TL;DR: In this paper, a low-order distributed feedback (DFB) optofluidic dye laser with reduced threshold was demonstrated using replica molding with two masters, and the second order DFB dye laser exhibited the lowest pump threshold of 78 nJ/pulse.
Journal ArticleDOI

Pressure-driven spatiotemporal control of the laminar flow interface in a microfluidic network.

TL;DR: A system for dynamically adjusting the position of the laminar interface between two fluids flowing inside a microfluidic channel, with a time response of less than 0.1 s, through feedback control of the channel inlet pressure is described.
Journal ArticleDOI

Tunable optofluidic microlens through active pressure control of an air–liquid interface

TL;DR: In this paper, a tunable in-plane optofluidic microlens with a 9× light intensity enhancement at the focal point is presented, which is formed by a combination of a divergent air-liquid interface and a static polydimethylsiloxane lens, and is fabricated using standard soft lithography procedures.
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