Title :
A wirelessly powered and interrogated blood flow monitoring microsystem fully integrated with a prosthetic vascular graft for early failure detection
Author :
Jia Hao Cheong ; Chee Keong Ho ; Ng, Serene Seng Ying ; Rui-Feng Xue ; Hyouk-Kyu Cha ; Khannur, Pradeep Basappa ; Xin Liu ; Lee, Andreas Astuti ; Endru, Ferguson Noviar ; Park, W.-T. ; Li Shiah Lim ; He, Chu ; Minkyu Je
Author_Institution :
Inst. of Microelectron., A*STAR (Agency for Sci., Technol. & Res.), Singapore, Singapore
Abstract :
This paper presents an implantable blood flow monitoring microsystem embedded in a prosthetic graft for early graft failure detection. The microsystem consists of two MEMS pressure sensors, an inductively powered wireless sensor interface ASIC, two miniature coupling coils, and a flexible cable connecting them. The implantable microsystem is powered and configured by an external monitoring device using 13.56-MHz carrier frequency. The blood flow rate information is sensed in the form of an oscillation frequency and transmitted to the external monitoring device through backscattering. The ASIC fabricated in 0.18-μm CMOS process occupies a total area of 0.5 × 3.3 mm2 including pads and consumes a total power of 12.6 μW. With the high-efficiency design of coupling coils, rectifier and LDO, the wireless power link achieves an overall power efficiency of 2% through 5-cm-thick tissue. With the ultra low power consumption and high-efficiency power transfer, the ASIC can be powered by transmitting only 630-μW RF carrier from the external device. The measured performance of the blood flow monitoring microsystem demonstrates a 0.17-psi pressure resolution.
Keywords :
CMOS integrated circuits; application specific integrated circuits; bioMEMS; biomedical electronics; blood; haemodynamics; haemorheology; low-power electronics; microsensors; patient monitoring; power consumption; prosthetics; rectifiers; CMOS process; LDO; MEMS pressure sensor; backscattering; blood flow rate information; carrier frequency; efficiency 2 percent; external monitoring device; flexible cable; frequency 13.56 MHz; graft early failure detection; high-efficiency design; high-efficiency power transfer; implantable blood flow monitoring microsystem; inductively powered wireless sensor interface ASIC; interrogated blood flow monitoring microsystem; miniature coupling coil; oscillation frequency; power 12.6 muW; power 630 muW; prosthetic graft; prosthetic vascular graft; rectifier; size 0.18 mum; ultra low power consumption; wireless power link; wirelessly powered blood flow monitoring microsystem;
Conference_Titel :
Solid State Circuits Conference (A-SSCC), 2012 IEEE Asian
Conference_Location :
Kobe
DOI :
10.1109/IPEC.2012.6522654