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Capillary electrophoresis (CE) and microfluidic chip (MC) devices
are relatively mature technologies, but this book demonstrates how
they can be integrated into a single, revolutionary device that can
provide on-site analysis of samples when laboratory services are
unavailable. By introducing the combination of CE and MC
technology, Microfluidic Chip-Capillary Electrophoresis Devices
broadens the scope of chemical analysis, particularly in the
biomedical, food, and environmental sciences. The book gives an
overview of the development of MC and CE technology as well as
technology that now allows for the fabrication of MC-CE devices. It
describes the operating principles that make integration possible
and illustrates some achievements already made by the application
of MC-CE devices in hospitals, clinics, food safety, and
environmental research. The authors envision further applications
for private and public use once the proof-of-concept stage has been
passed and obstacles to increased commercialization are addressed.
A summary of the current methodology and application of MC-CE
devices, including their merits, limitations, and potential, closes
the book. It highlights the path to be taken for future development
of MC-CE and anticipates new advances in technology that will
increase their performance and use as powerful analytical tools.
With enhanced power, their scope of applications will widen and
yield new benefits to researchers and the general public.
Capillary electrophoresis (CE) and microfluidic chip (MC) devices
are relatively mature technologies, but this book demonstrates how
they can be integrated into a single, revolutionary device that can
provide on-site analysis of samples when laboratory services are
unavailable. By introducing the combination of CE and MC
technology, Microfluidic Chip-Capillary Electrophoresis Devices
broadens the scope of chemical analysis, particularly in the
biomedical, food, and environmental sciences. The book gives an
overview of the development of MC and CE technology as well as
technology that now allows for the fabrication of MC-CE devices. It
describes the operating principles that make integration possible
and illustrates some achievements already made by the application
of MC-CE devices in hospitals, clinics, food safety, and
environmental research. The authors envision further applications
for private and public use once the proof-of-concept stage has been
passed and obstacles to increased commercialization are addressed.
A summary of the current methodology and application of MC-CE
devices, including their merits, limitations, and potential, closes
the book. It highlights the path to be taken for future development
of MC-CE and anticipates new advances in technology that will
increase their performance and use as powerful analytical tools.
With enhanced power, their scope of applications will widen and
yield new benefits to researchers and the general public.
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