Applications
Published: 08 Jan 2019 · Last updated: 11 Aug 2026
Semiconductor technology is becoming increasingly important in global healthcare enabling novel understanding, discovery and treatment of disease to make healthcare more affordable and efficient, both in and out of the clinic.
With the global healthcare industry being valued at US $1.65 trillion in 2016 and expected to reach US $2.69 trillion by 2025, it is an important growing industry. Key drivers behind this ongoing market growth are growing and aging populations, over urbanization, rising disease prevalence all of which are putting further strain on our healthcare systems which are already grappling with issues relating to access, quality, and cost. Convergence of technology from the seemingly disparate fields of semiconductor device processing, life sciences are fast revolutionising healthcare and medical research by enabling quick and accurate diagnosis. This in turn is increasing the speed and efficiency of treatment for various conditions as well as biomedical research and development.
In the previous edition of this white paper series we provided an overview the various processing challenges and solutions for fabrication of microfluidics and active elements of these devices as outlined in Figure 1. Plasma based processes form a critical tool for the fabrication of microfluidics with control and precision while enabling the flexibility of design for various applications. The range of plasma processing techniques offered by Oxford Instruments allows researchers and device manufacturers to work with multiple material platforms (Silicon, Glass, Polymer etc) and have full control over the properties of microfluidic features.

Fig. 1 — Major processing requirements for biomedical device fabrication
A key requirement of microfluidics fabrication for biomedical devices is the ability to control surface properties after the creation of channels. In this paper we will overview processing solutions for hydrophobic and hydrophilic surface creation which is critical for both active functions of the device as well as for post processing challenges such as bonding, sealing and de-scum.
Surface roughness is very important for microfluidic flow characteristics like pressure gradients, friction, heat transfer, turbulence etc., which can be achieved by carefully optimizing the channel fabrication processes as described above. However, an equally important surface technique is the control over its hydrophobicity. Tuning this property over the device surface enables control over fluid flow and interaction. In addition, there also a need to match the hydrophobicity of all the surfaces that fluid comes in contact with to enable uniform interactions and flow. For example: a Si-wafer with SiOx on its surface can be too hydrophilic while a PMMA device too hydrophobic. Such a control not only enables improvement of efficiency in pumping fluids but also important for fabricating structures for operations such as mixing, positioning or separating purely by engineering hydrophilic-hydrophobic surface transitions. This provides the additional advantage of decreasing the size and complexity of devices by avoiding the need for active control measures which usually require additional energy sources or pumps to control the fluid.

Fig. 2 — Schematic illustration of the function of organic coatings, showing functional layers for sensing, hydrophobic coatings, metal, substrate, and nitride/oxide passivation layers
A hydrophobic surface does not allow water to flow into it without additional pressure while a channel with a hydrophilic surface naturally allows water penetration. This effect can be used to control the flow of liquid. Hydrophobic surfaces are not only useful for microfluidic device operation but also in various other facets of biomedical device fabrication such as mould fabrication, bonding, moisture barriers etc.
There are several ways to engineer hydrophilic and hydrophobic surfaces using Oxford Instruments Plasma Technology processes as follows:


The wide application scope of semiconductor based biomedical devices demands precise control over the interaction of bio-analytes with the several surfaces as it passes through the device. This control can only be achieved via modification of surfaces and walls in its components. The properties of the surface and the strategy its modification is determined by the end application, nature of the fluid, composition and target biochemistry. This spread in requirements presents a strong challenge for biomedical device engineering. In this paper, several Oxford Instruments plasma and thermal processing strategies have been described to address this challenge.
Biosensors are devices that detect biological species and transform the resulting biochemical signal into a physical one that can correlates with the concentration of the target species. These are made up of microfluidics that perform the task of manipulating, processing and transporting analytes in a form that is ready to be processed by these active systems. These active components are commonly fabricated using fabrication processes for electronic, photonic or MEMS based sensors combined with surface functionalization techniques. In the next paper, techniques and challenges for application of such sensors for bio-detection will be outlined.