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Published by: Yole Developpement
Published: Aug. 1, 2009 - 206 Pages
Table of Contents
- 1 - EXECUTIVE SUMMARY
- 2 - INTRODUCTION
- 3-MICROFLUIDIC MARKETS 2009-2014
- Market geographical distribution
- Impact of microfluidics
- Microfluidic applications
- Microfluidic components market value and forecast
- Compound Annual Growth Rates 2006- 2008 and 2009-2014
- 4- WHAT HAPPENED SINCE 2007
- Microfluidics, a structured market
- Market data versus EMMA2007 forecasts
- Total diagnostics & Drug Delivery Markets 2006-2008; in M$
- Microfluidic Devices Market Evolution 2006-2008, in M$
- Market Breakdown in 2008
- Materials by Application
- Some product introduction
- Investments in microfluidics since 2007
- M&A in microfluidics since 2007
- Life & Death
- 5- MICROFLUIDIC APPLICATIONS
- Microfluidic Applications description
- Microfluidics for Analytical devices
- Cartridges for clinical and veterinary diagnostics
- Microfluidic devices for Pharmaceutical and life science applications
- Miniaturized cell based assays
- Cell based assays
- Miniaturized cell based assays
- Applications
- Ion channel drug discovery and screening
- Patch-clamp
- Cell transfection
- Living or fixed cells
- Primary cells and stem cells
- Drug discovery programs
- Toxicology and initial ADME studies
- Shear flow analysis
- Microfluidic devices for Point of Care
- Capillary Electrophoresis chips
- Microfluidic devices for Industrial and environmental testing
- Microdispensers
- Microdispensing
- Microfluidics positioning in the Liquid Handling market
- Microdispensers and workflow platforms
- Overview of low liquid-handling systems
- Microfluidic devices for drug delivery
- 6- MICROFLUIDIC TECHNOLOGIES
- Microfluidics technologies Overview
- Microfluidic Fluid motion strategy
- Microfluidic Prototyping and Production
- Materials by Application
- Silicon as a substrate for Life Science applications
- Glass as a substrate for Life Science applications
- Polymers as a substrate for Life Science applications
- Microfluidic technologies and materials
- Synthesis
- Microfluidic technologies: Main trends and conclusion
- Functions integration
- Functions integration, a main challenge
- Functions needed for Life Science applications
- A multi-disciplinary challenge
- Material combination, a main challenge
- Packaging techniques and their evolution
- Packaging evolution
- Advanced packaging: The challenges
- From 2D to 3D
- Packaging for Life Science applications
- DALSA Semiconducteur: Capillary Electrophoresis (CE) and DNA Separation
- 7- MICROFLUIDIC SUPPLY CHAIN
- Competences required along the microfluidic industrial chain
- Expectations of the microfluidic customers
- Glass industrial supply chain
- Polymer industrial supply chain
- Silicon Industrial supply chain
- IVD Industrial supply chain
- 8- MICROFLUIDIC VALUE CHAIN
- Value chain analysis
- Case Study: Microarray component value chain
- Case Study: CALIPER Life Sciences LabChip
- Case Study: Cost Analysis Caliper Labchip
- Case Study: Caliper Labchip; Material Variation
- Case Study: Caliper Labchip; Production location
- Conclusion on the value chain
- 9- CONCLUSION
AbstractMarket and Technology Analysis of Microfluidic devices and technologies for
Point of care diagnostics, Pharmaceutical and life science research, Analytical
devices, Industrial & environmental testing, Drug delivery, and Clinical &
veterinary diagnostics.
OBJECTIVES OF THE REPORT
The new Yole report presents microfluidics market
data for 2006-2008 and market forecasts for
2009-2014 for life sciences and in-vitro-diagnostic
applications, and provides detailed analysis of
the market. A specific section is dedicated on the
analysis of what happened over the last 3 years
(including Alliances & mergers, new products, fund
raising
), which are key elements to understand
the actual and future microfluidic market.
MICROFLUIDIC APPLICATIONS
EMMA 09 report describes in detail the following
applications:
- Point of care diagnostics,
- Pharmaceutical and life science research,
- Analytical devices,
- Industrial & environmental testing,
- Drug delivery and clinical & veterinary diagnostics.
This analysis includes the market data, trends and drivers, key players and technologies.
MICROFLUIDIC TECHNOLOGIES
The report provides an overview of the main fluid
motion and manufacturing technologies. We
describe, by application, the main material used
(glass, polymer, silicon...), with their advantages
and drawbacks.
MICROFLUIDIC SUPPLY CHAIN
The report describes the microfluidic supply chain,
from R&D to commercialization and distribution. It
shows for each type of material the main players
and their role in the supply chain.
MICROFLUIDIC VALUE CHAIN
The analysis of the value chain provides an
understanding of costs related to the different
manufacturing steps (included packaging and
quality control) in relation to the cost of the final
product which includes reagent, commercialization
and distribution costs.
MARKET
Microfluidic components
are diverse and find many
applications in the diagnostic
and life Sciences fields.
Microfluidics has entered the
Life Sciences market as a key
technology to provide solution
to the market requirements in
terms of:
- Analysis automation
through:
- high parallelisation
- multiplex analysis
- Reduced analysis cost by
lowering sample volume
and reagents used
- Faster analysis
- Higher accuracy in fluid
dispensing.
In 2014, the market of microfluidic devices will exceed $3 billion. Drug discovery remains the first
microfluidics market, and will continue to grow significantly as well. This is particularly true for the
technologies enabling multiplexing. However, the largest growth is expected in the field of Point of Care
diagnostics.
Today, some products are moving from research applications to the clinical diagnostics and point of care
fields. However, this trend is limited due to the relative high manufacturing costs of many microfluidic
devices and the fact that significant hurdles remain in the technology itself and its fusion into the
healthcare system.
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