differential circuits
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Measurement ◽  
2019 ◽  
Vol 140 ◽  
pp. 207-214 ◽  
Author(s):  
Ernesto Serrano-Finetti ◽  
Oscar Casas ◽  
Ramon Pallàs Areny

2019 ◽  
Vol 9 (9) ◽  
pp. 1907 ◽  
Author(s):  
Abdul Ali ◽  
Jongwon Yun ◽  
Herman Jalli Ng ◽  
Dietmar Kissinger ◽  
Franco Giannini ◽  
...  

In this paper, we report a high-performance balun with characteristics suitable for future broadband sub-THz differential circuits. The idea of the balun is based on three asymmetric coupled lines, which enhance the odd mode capacitances to equalize the even/odd mode phase velocities. The inner line of the three asymmetric coupled lines is configured to form the open stub ( λ /2), while the outer lines form short stubs ( λ /4). To further reduce the phase imbalance, the short stubs in one of the arms of the balun are connected with vias and a lower metal layer. The balun is developed using the standard 130-nm SiGe BiCMOSback-end process and EM simulated with ADS momentum and Sonnet. The −10-dB reflection coefficient (S 11 ) bandwidth of the balun is 136 GHz (88–224 GHz). It shows insertion loss (including RF pads) <1.5 dB, phase imbalance <7 degrees, and amplitude imbalance <1 dB at 94–177 GHz. Furthermore, a scaled-down version of the balun operates on the WR-6, WR-5, and WR-4 frequency bands without significant degradation in its performance. Such characteristics of the balun make it an ideal candidate for various broadband differential circuits.


Author(s):  
Stéphane Badel ◽  
Can Baltaci ◽  
Alessandro Cevrero ◽  
Yusuf Leblebici

Author(s):  
Tao He ◽  
Manjunath Kareppagoudr ◽  
Un-Ku Moon ◽  
Gabor C. Temes ◽  
Yi Zhang

2017 ◽  
Vol 8 (2) ◽  
pp. 108-121
Author(s):  
I. Z. Gilavdary ◽  
S. N. Mekid ◽  
N. N. Riznookaya

The challenges of designing simple, reliable, and high sensitivity graviinertial sensors are investigated. The sensor comprises a proof mass (PM) and is fixed with the housing by the elastic torsion suspension. PM makes small rotations under the action of gravitational forces or inertial forces.The distinctive features of the sensor are that the differential electrostatic system provides simultaneous reading of the desired signal and a control the torsional rigidity of suspension. In addition, the PM's rotational angular velocity transforms in the alternating current flowing through the capacitors. The presence of аlternating current (AC) voltage sources allows to get the parametric amplification of AC and significantly to improve the sensitivity of the sensor. In the simplest case, the sensor does not contain any feedback circuits.As an example, calculations of the micromechanical linear accelerations confirm that the periodic modulation of the coefficient of elastic stiffness of the suspension can significantly increase the sensitivity in the low frequency range, even in the absence of parametric resonance.Conditions for suppressions of background current participating in the output signal from a parametric pumping due to the asymmetry of the differential circuits are set. The frequency characteristics calculations of the sensor were carried out. It is expected, that the proposed sensor design ensures minimum noise level, which can be achievable in the graviinertial sensors. This design and the constructed theory can serve as a basis for creating a wide range of graviinertial devices operating on a movable base, for example, linear and angular accelerometer, gravity gradiometer, gravimeters, and inclinometers, which can be realized in the hybrid and in the micromechanical versions.


2016 ◽  
Vol 64 (5) ◽  
pp. 1585-1593 ◽  
Author(s):  
Chunhu Zhang ◽  
Matthew Bauwens ◽  
N. Scott Barker ◽  
Robert M. Weikle ◽  
Arthur W. Lichtenberger
Keyword(s):  
W Band ◽  

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