Ecublens, Switzerland

Mila Boncheva-Bettex


Average Co-Inventor Count = 7.0

ph-index = 1

Forward Citations = 8(Granted Patents)


Company Filing History:


Years Active: 2013

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1 patent (USPTO):Explore Patents

Title: Innovations of Mila Boncheva-Bettex

Introduction

Mila Boncheva-Bettex is a prominent inventor known for her contributions to the field of microfluidics. She is based in Ecublens, Switzerland, and has made significant strides in the development of conductive pathways and microstructures. Her work focuses on the intersection of microfluidic devices and solid conductive materials, paving the way for innovative applications in various industries.

Latest Patents

Mila Boncheva-Bettex holds a patent for the "Fabrication of conductive pathways, microcircuits and microstructures in microfluidic networks." This patent discloses a variety of microfluidic devices and solid, typically electrically conductive devices that can be formed using such devices as molds. The invention includes the formation of conductive pathways by solidifying a liquid metal present in microfluidic channels. These microsolidic devices can create energy that interacts with flowing fluids, enhancing their functionality. The patent also explores the potential for flexible electrical components and self-assembled structures.

Career Highlights

Mila Boncheva-Bettex has established herself as a key figure in her field through her innovative research and development efforts. Her work at Harvard College has allowed her to collaborate with leading experts and contribute to groundbreaking advancements in microfluidic technology.

Collaborations

Mila has worked alongside notable colleagues such as Derek A Bruzewicz and George M Whitesides. Their collaborative efforts have furthered the understanding and application of microfluidic devices in various scientific and engineering contexts.

Conclusion

Mila Boncheva-Bettex is a trailblazer in the field of microfluidics, with her innovative patent showcasing the potential of conductive pathways in microfluidic networks. Her contributions continue to influence the development of advanced technologies in this area.

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