Chai Kevin T C, Choe Kunil, Bernal Olivier D, Gopalakrishnan Pradeep K, Zhang Guo-Jun, Kang Tae Goo, Je Minkyu
Integrated Circuits and Systems Laboratory, Institute of Microelectronics, A*STAR (Agency of Science, Technology and Research), Singapore.
Annu Int Conf IEEE Eng Med Biol Soc. 2010;2010:3491-4. doi: 10.1109/IEMBS.2010.5627783.
A 1.8-mW, 18.5-mm(2) 64-channel current readout ASIC was implemented in 0.18-µm CMOS together with a new calibration scheme for silicon nanowire biosensor arrays. The ASIC consists of 64 channels of dedicated readout and conditioning circuits which incorporate correlated double sampling scheme to reduce the effect of 1/f noise and offset from the analog front-end. The ASIC provides a 10-bit digital output with a sampling rate of 300 S/s whilst achieving a minimum resolution of 7 pA(rms). A new electrical calibration method was introduced to mitigate the issue of large variations in the nano-scale sensor device parameters and optimize the sensor sensitivity. The experimental results show that the proposed calibration technique improved the sensitivity by 2 to 10 times and reduced the variation between dataset by 9 times.
一款1.8毫瓦、18.5平方毫米的64通道电流读出专用集成电路(ASIC)采用0.18微米互补金属氧化物半导体(CMOS)工艺实现,并针对硅纳米线生物传感器阵列采用了一种新的校准方案。该ASIC由64个专用读出和调节电路通道组成,这些电路采用相关双采样方案,以减少来自模拟前端的1/f噪声和失调的影响。该ASIC提供10位数字输出,采样率为300样本/秒,同时实现了7皮安(均方根)的最小分辨率。引入了一种新的电校准方法,以缓解纳米级传感器器件参数大幅变化的问题,并优化传感器灵敏度。实验结果表明,所提出的校准技术将灵敏度提高了2至10倍,并将数据集之间的变化减少了9倍。