An Active Mixer for Microscale Purification and Sequencing Reaction Clean-Up

2002 ◽  
pp. 239-241
Author(s):  
Ling-Sheng Jang ◽  
Deirdre R. Meldrum ◽  
Mark R. Holl
Keyword(s):  
Author(s):  
Mohamed M. R. Esmael ◽  
Mohamed Mobarak ◽  
Mohamed A. Y. Abdalla
Keyword(s):  

2012 ◽  
Vol 48 (10) ◽  
pp. 554 ◽  
Author(s):  
Dong-Hyun Kim ◽  
Jae-Sung Rieh
Keyword(s):  

Author(s):  
Chih-Chang Chang ◽  
Lung-Ming Fu ◽  
Ruey-Jen Yang
Keyword(s):  

2018 ◽  
Vol 10 (5-6) ◽  
pp. 717-728
Author(s):  
Marco Dietz ◽  
Andreas Bauch ◽  
Klaus Aufinger ◽  
Robert Weigel ◽  
Amelie Hagelauer

AbstractA multi-octave receiver chain is presented for the use in a monolithic integrated vector network analyzer. The receiver exhibits a very wide frequency range of 1–32 GHz, where the gain meets the 3 dB-criterion. The differential receiver consists of an ultra-wideband low noise amplifier, an active mixer and an output buffer and exhibits a maximum conversion gain (CG) of 16.6 dB. The main design goal is a very flat CG over five octaves, which eases calibration of the monolithic integrated vector network analyzer. To realize variable gain functionality, without losing much input matching, an extended gain control circuit with additional feedback branch is shown. For the maximum gain level, a matching better than −10 dB is achieved between 1–28 GHz, and up to 30.5 GHz the matching is better than −8.4 dB. For both, the input matching and the gain of the LNA, the influence of the fabrication tolerances are investigated. A second gain control is implemented to improve isolation. The measured isolations between RF-to-LO and LO-to-RF are better than 30 dB and 60 dB, respectively. The LO-to-IF isolation is better than 35 dB. The noise figure of the broadband receiver is between 4.6 and 5.8 dB for 4–32 GHz and the output referred 1-dB-compression-point varies from 0.1 to 4.3 dBm from 2–32 GHz. The receiver draws a current of max. 66 mA at 3.3 V.


2005 ◽  
Vol 41 (3) ◽  
pp. 134 ◽  
Author(s):  
C. Viallon ◽  
J. Graffeuil ◽  
T. Parra
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Author(s):  
Thien Xuan Dinh ◽  
Yoshifumi Ogami

This paper describes numerically the design and performance of an active mixer which aims to exploit the chaos generated by a micro-rotor in continuous flow. The mixer consists of a step contraction-expansion microchannel and a micro-rotor placed at the step. The micro-rotor can be set into motion by laser power or magnetic field, inducing 3D motion in the surrounding fluid. By tracking streaklines from the inlet, we observed that fluids from the inlet can penetrate into the space between the paddles of the rotor, and then are mixed here. The streaklines also show that two fluids are twisted 90 degrees after passing the rotor region. It implies that mixing in the exit channel occurs in the height instead in the width of the exit channel. It makes the mixer applicable for channels with high aspect ratio of the cross section. The effectiveness mixing of the mixer is measured by the homogeneity distribution of a passive scalar on the outlet of the mixer. The results show that effectiveness of convective mixing induced by the rotor depends on Strouhal number, which is defined as the ratio of tip paddle velocity to mean flow in the channel. Mixing efficiency increases with increasing Strouhal number.


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