An electrokinetically tunable optofluidic bi-concave lens.

@article{Li2012AnET,
  title={An electrokinetically tunable optofluidic bi-concave lens.},
  author={Haiwang Li and Chaolong Song and Trung-Dung Luong and Nam‐Trung Nguyen and Teck Neng Wong},
  journal={Lab on a chip},
  year={2012},
  volume={12 19},
  pages={
          3680-7
        }
}
This paper numerically and experimentally investigates and demonstrates the design of an optofluidic in-plane bi-concave lens to perform both light focusing and diverging using the combined effect of pressure driven flow and electro-osmosis. The concave lens is formed in a rectangular chamber with a liquid core-liquid cladding (L(2)) configuration. Under constant flow rates, the performance of the lens can be controlled by an external electric field. The lens consists of a core stream… 
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References

SHOWING 1-10 OF 80 REFERENCES
A tunable optofluidic lens based on combined effect of hydrodynamics and electroosmosis
This paper presents the modeling and experimental results of a liquid-core liquid-cladding optofluidic lens under the combined effect of hydrodynamics and electroosmosis. To allow the lens to be
Multi-functional, optofluidic, in-plane, bi-concave lens: tuning light beam from focused to divergent
The miniaturization and integration of in-plane micro-lenses into microfluidic networks for improving fluorescence detection has been widely investigated recently. This article describes the design
Dynamically reconfigurable liquid-core liquid-cladding lens in a microfluidic channel.
TLDR
The use of a cladding liquid with refractive index matched to that of the material used in the fabrication of the microfluidic system (here, poly(dimethylsiloxane)) improves the quality of the focused beam.
Modelling and optimization of micro optofluidic lenses.
TLDR
Experimental results agree well with the analytical results predicted by the model and the model establishes basic relations between the flow rate ratio of the core/cladding streams and the radius of curvature and consequently the focal length of the lens.
Hydrodynamically tunable optofluidic cylindrical microlens.
TLDR
This investigation reveals a simple, robust, and effective mechanism for integrating optofluidic tunable microlenses in lab-on-a-chip systems.
An optofluidic prism tuned by two laminar flows.
TLDR
A tunable optofluidic prism based on the configuration of two laminar flow streams with different refractive indices in a triangular chamber with the capability to transform from a symmetric to an asymmetric prism with the assistance of a third flow is presented.
Tunable optofluidic microlens through active pressure control of an air–liquid interface
We demonstrate a tunable in-plane optofluidic microlens with a 9× light intensity enhancement at the focal point. The microlens is formed by a combination of a tunable divergent air–liquid interface
Tunable micro-optofluidic prism based on liquid-core liquid-cladding configuration.
TLDR
A tunable micro-optofluidic prism based on the liquid-core liquid-cladding structure formed in a sector-shape chamber that can be utilized for the alignment of the optical path inside a chip or for the development of optical switches.
Tunable Liquid Gradient Refractive Index (L-GRIN) lens with two degrees of freedom.
TLDR
A tunable optofluidic microlens configuration named the Liquid Gradient Refractive Index (L-GRIN) lens for focusing light within a microfluidic device, providing a new strategy for developing integrative tunable microlenses for a variety of lab-on-a-chip applications.
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