Publication

An implantable biosensor array for personalized therapy applications

Andrea Cavallini
2013
EPFL thesis
Abstract

At present, most of the tests involved in personalized medicine are complex and must be conducted in specialized centers. The development of appropriate, fast and inexpensive diagnostic technologies can encourage medical personnel in performing preventive tests, providing the driving force to push users, industry and administrations to the adoption of personalized therapy policies. In this respect, the development of new biosensors for various healthcare applications needs may represent a concrete incentive. The objective of this PhD project is the development of a fully implantable biosensor plat- form for personalized therapy applications. The thesis present innovative research on the electrochemical detection of common marketed drugs, drug cocktails, glucose and ATP with biosensors based on cytochromes P450 and different oxidases. The inclusion of carbon nan- otubes provided increased sensitivity and detection limit, enabling the detection of several drugs in their therapeutic range in undiluted human serum. A miniaturized, passive substrate capable to host 5 independent biosensor electrodes, a pH sensor, a temperature sensor as well as an interface for the signal processing electron- ics has been designed, microfabricated and tested. Different and reproducible nano-bio- functionalization for the single electrodes was obtained with high spatial resolution via selec- tive electrodeposition of chitosan/carbon nanotubes/enzyme solutions at the various elec- trodes. The array, completely fabricated with biocompatible materials, was then integrated with a CMOS circuit and a remote powering coil for the realization of a fully implantable device. The assembled system has been packaged with an inner moisture barrier in parylene C, to prevent circuit corrosion and toxic metals leaking, and an external biocompatible silicone shell to improve the host tolerance and reduce the local inflammation. The efficacy of the parylene barrier, as well as the toxicity of carbon nanotubes, has been assessed with in-vitro cytotoxicity tests conform to the ISO-109931 standards. The final packaged device was then implanted in mice to assess its short-term biocompatibility. Comparison between 7 and 30 days in in vivo implantations showed significant reduction of the inflammatory response in time, suggesting normal host recovery.

About this result
This page is automatically generated and may contain information that is not correct, complete, up-to-date, or relevant to your search query. The same applies to every other page on this website. Please make sure to verify the information with EPFL's official sources.
Related concepts (38)
Integrated circuit packaging
In electronics manufacturing, integrated circuit packaging is the final stage of semiconductor device fabrication, in which the block of semiconductor material is encapsulated in a supporting case that prevents physical damage and corrosion. The case, known as a "package", supports the electrical contacts which connect the device to a circuit board. In the integrated circuit industry, the process is often referred to as packaging. Other names include semiconductor device assembly, assembly, encapsulation or sealing.
Integrated circuit
An integrated circuit or monolithic integrated circuit (also referred to as an IC, a chip, or a microchip) is a set of electronic circuits on one small flat piece (or "chip") of semiconductor material, usually silicon. Large numbers of miniaturized transistors and other electronic components are integrated together on the chip. This results in circuits that are orders of magnitude smaller, faster, and less expensive than those constructed of discrete components, allowing a large transistor count.
Semiconductor device fabrication
Semiconductor device fabrication is the process used to manufacture semiconductor devices, typically integrated circuits (ICs) such as computer processors, microcontrollers, and memory chips (such as NAND flash and DRAM) that are present in everyday electrical and electronic devices. It is a multiple-step photolithographic and physio-chemical process (with steps such as thermal oxidation, thin-film deposition, ion-implantation, etching) during which electronic circuits are gradually created on a wafer, typically made of pure single-crystal semiconducting material.
Show more
Related publications (46)

Integrated multiplexed microwave readout of silicon quantum dots in a cryogenic CMOS chip

Edoardo Charbon, Andrea Ruffino, Yatao Peng

Solid-state quantum computers require classical electronics to control and readout individual qubits and to enable fast classical data processing [1-3]. Integrating both subsystems at deep cryogenic temperatures [4], where solid-state quantum processors op ...
2021

Integration of hybrid material systems in conformable neural interfaces

Florian Dylan Fallegger

Neural interfaces are devices that are implanted into the body and interface electrically with the central (CNS) or peripheral nervous system. They are inserted surgically for short periods of time or chronically to diagnose or treat several neural disease ...
EPFL2020

Opportunities and challenges of 2D materials in back-end-of-line interconnect scaling

Benjamin Aaron Helfrecht, Alejandro Strachan

As the challenges in continued scaling of the integrated circuit technology escalate every generation, there is an urgent need to find viable solutions for both the front-end-of-line (transistors) and the back-end-of-line (interconnects). For the interconn ...
AMER INST PHYSICS2020
Show more
Related MOOCs (7)
Micro and Nanofabrication (MEMS)
Learn the fundamentals of microfabrication and nanofabrication by using the most effective techniques in a cleanroom environment.
Microstructure Fabrication Technologies I
Learn the fundamentals of microfabrication and nanofabrication by using the most effective techniques in a cleanroom environment.
Micro and Nanofabrication (MEMS)
Learn the fundamentals of microfabrication and nanofabrication by using the most effective techniques in a cleanroom environment.
Show more

Graph Chatbot

Chat with Graph Search

Ask any question about EPFL courses, lectures, exercises, research, news, etc. or try the example questions below.

DISCLAIMER: The Graph Chatbot is not programmed to provide explicit or categorical answers to your questions. Rather, it transforms your questions into API requests that are distributed across the various IT services officially administered by EPFL. Its purpose is solely to collect and recommend relevant references to content that you can explore to help you answer your questions.