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    • 11. 发明授权
    • Integration structure of semiconductor circuit and microprobe sensing elements and method for fabricating the same
    • 半导体电路和微探针感测元件的集成结构及其制造方法
    • US07875479B2
    • 2011-01-25
    • US12382587
    • 2009-03-19
    • Jin-Chern ChiouChih-Wei Chang
    • Jin-Chern ChiouChih-Wei Chang
    • H01L21/00H01L23/48H01L23/52
    • A61B5/685A61B2562/0209A61B2562/046A61B2562/125H01L23/481H01L2224/1613H01L2924/1461H01L2924/00
    • The present invention discloses an integration structure of a semiconductor circuit and microprobe sensing elements and a method for fabricating the same. In the method of the present invention, a semiconductor circuit is fabricated on one surface of a semiconductor substrate, and the other surface of the semiconductor substrate is etched to form a microprobe structure for detect physiological signals. Next, a deposition method is used to sequentially form an electrical isolated layer and an electrical conductive layer on the microprobes. Then, an electrical conductive material is used to electrically connect the electrical conductive layer with the electrical pads of the semiconductor circuit. Thus is achieved the integration of a semiconductor circuit and microprobe sensing elements in an identical semiconductor substrate with the problem of electric electrical isolated being solved simultaneously. Thereby, the voltage level detected by the microprobes will not interfere with the operation of the semiconductor circuit.
    • 本发明公开了一种半导体电路和微探针感测元件的集成结构及其制造方法。 在本发明的方法中,在半导体衬底的一个表面上制造半导体电路,蚀刻半导体衬底的另一个表面以形成用于检测生理信号的微探针结构。 接下来,使用沉积方法在微探针上依次形成电隔离层和导电层。 然后,使用导电材料将导电层与半导体电路的电焊盘电连接。 从而实现半导体电路和微探针感测元件在相同的半导体衬底中的集成,同时解决了电隔离的问题。 由此,微探针检测的电压电平不会干扰半导体电路的动作。
    • 14. 发明申请
    • PHYSIOLOGICAL SIGNAL COLLECTION UNIT AND DETECTOR THEREOF
    • 生理信号收集单元及其检测器
    • US20130030270A1
    • 2013-01-31
    • US13473523
    • 2012-05-16
    • Jin-Chern ChiouYu-Chieh Huang
    • Jin-Chern ChiouYu-Chieh Huang
    • A61B6/00A61B5/0478
    • A61B5/0476A61B5/14553A61B5/6803A61B5/6814
    • A physiological signal collection unit is for use with a physiological signal measuring apparatus to measure physiological signals from an anatomical part of a test subject, in which the anatomical part is covered with hair. The physiological signal collection unit includes a detector and a wearable member. The detector includes a circuit substrate defining a substrate-through-hole to permit hair strands to extend through, an electrical connector, and at least one signal collecting component. The wearable member is to be worn on the anatomical part of the test subject, and is formed with a through-hole having a size smaller than size of the circuit substrate. The through-hole permits the hair strands extending through the circuit substrate to extend through the wearable member.
    • 生理信号收集单元用于与生理信号测量装置一起使用,以测量来自测试对象的解剖部分的生理信号,其中解剖部分被毛发覆盖。 生理信号收集单元包括检测器和可穿戴构件。 检测器包括限定通孔的电路基板,以允许发丝穿过,电连接器和至少一个信号收集部件。 可穿戴构件将被佩戴在测试对象的解剖部分上,并且形成有尺寸小于电路基板的尺寸的通孔。 通孔允许延伸穿过电路基板的发条延伸穿过可穿戴构件。
    • 16. 发明授权
    • Control system for an electrostatically-driven microelectromechanical device
    • 用于静电驱动的微机电装置的控制系统
    • US06687112B2
    • 2004-02-03
    • US10101589
    • 2002-03-21
    • Jin-Chern ChiouYu-Chen Lin
    • Jin-Chern ChiouYu-Chen Lin
    • H01H900
    • H01H59/0009
    • The present invention relates to a control system for an electrostatically-driven microelectromechanical device, which uses multiple electrodes to control the microelectromechanical device, i.e. the lower driven electrode of a capacitor with known two parallel driven electrodes is cut into a number of small electrodes. By selecting an electrode pattern for a desired electrostatic force, it is capable of altering the non-linearity of the device based on various applications and achieving a characteristic such as a linear driven, digital driven, or ultimately optimal driven manners, which is able to reach high operation accuracy for the existing circuit that only possesses a limited accuracy.
    • 本发明涉及一种用于静电驱动的微机电装置的控制系统,该控制系统使用多个电极来控制微机电装置,即具有已知的两个并联的驱动电极的电容器的下驱动电极切割成多个小电极。 通过选择所需静电力的电极图案,能够根据各种应用改变装置的非线性,并实现诸如线性驱动,数字驱动或最终最优驱动方式的特性,其能够 达到高精度的现有电路只能具有有限的精度。
    • 17. 发明授权
    • Electric current compensation circuit for brushless motors for reducing
ripples in output torques during phase change
    • 用于无刷电机的电流补偿电路,用于在相变期间减少输出转矩波动
    • US5821725A
    • 1998-10-13
    • US731461
    • 1996-10-16
    • Chung-Cheng WangJin-Chern ChiouShih-Tung Cheng
    • Chung-Cheng WangJin-Chern ChiouShih-Tung Cheng
    • H02P6/10H02P5/28
    • H02P6/10
    • An electric current compensation circuit for use with a multiple-phase burshless motor to reduce ripples in the output torque is disclosed. It contains a plurality of electric current compensation loops each for a respective phase winding and each of the electric compensation loops contains: (a) a first input for receiving a line current from the driver; (b) a second input for receiving the compensation current from the motor sensor; (c) a forward rectifying circuit for forwardly rectifying the line current and the compensation current; (d) a reverse rectifying circuit for reversely rectifying the line current and the compensation current; and (e) a summation circuit for summing the forwardly rectified compensation current and the reversely rectified compensation current and outputting a synthetic current to a phase winding of the motor. Each time the phase is changed, the electric current compensation circuit is triggered causing the synthetic current to be sent to the motor to allow the motor to generate an output torque with reduced ripple.
    • 公开了一种与多相无刷电机一起使用以减少输出转矩波纹的电流补偿电路。 它包含多个电流补偿回路,每个电流补偿回路各自用于各自的相绕组,并且每个电补偿回路包含:(a)用于接收来自驾驶员的线电流的第一输入; (b)用于从电动机传感器接收补偿电流的第二输入; (c)正向整流线路电流和补偿电流的正向整流电路; (d)用于反向整流线路电流和补偿电流的反向整流电路; 和(e)用于将前向整流补偿电流和逆整流补偿电流相加的求和电路,并将合成电流输出到电动机的相绕组。 每次相位改变时,触发电流补偿电路,使得合成电流被发送到电动机,以允许电动机产生具有减小的纹波的输出转矩。
    • 20. 发明申请
    • WIRELESS INTRAOCULAR PRESSURE MONITORING DEVICE, AND SENSOR UNIT AND READER UNIT THEREOF
    • 无线内压式监测装置及传感器单元及其读取单元
    • US20120277568A1
    • 2012-11-01
    • US13342414
    • 2012-01-03
    • Jin-Chern ChiouChien-Kai Tseng
    • Jin-Chern ChiouChien-Kai Tseng
    • A61B3/16
    • A61B3/16
    • A wireless intraocular pressure monitoring device includes a sensor unit and a reader unit. The sensor unit includes: a soft contact lens for wearing on a cornea such that a curvature of the soft contact lens corresponds substantially to that of the cornea; an inductor embedded in the soft contact lens and having an inductance that corresponds to intraocular pressure when the soft contact lens is worn on the cornea; and a wireless transceiver module operable to generate an oscillation signal having a frequency dependent on the inductance of the inductor and to wirelessly transmit the oscillation signal. The reader unit is operable to receive and convert the oscillation signal into an output signal corresponding to the intraocular pressure.
    • 无线眼压监测装置包括传感器单元和读取器单元。 传感器单元包括:用于佩戴在角膜上的柔性隐形眼镜,使得软性隐形眼镜的曲率基本上对应于角膜的曲率; 电感器,其嵌入在所述软性隐形眼镜中,并且当所述软性隐形眼镜佩戴在所述角膜上时具有对应于眼内压的电感; 以及无线收发器模块,其可操作以产生具有取决于电感器的电感的频率并且无线地发送振荡信号的振荡信号。 读取器单元可操作以将振荡信号接收并转换成对应于眼内压的输出信号。