Ultrastable low-noise current amplifier: A novel device for measuring small electric currents with high accuracy

被引:93
作者
Drung, D. [1 ]
Krause, C. [1 ]
Becker, U. [2 ]
Scherer, H. [2 ]
Ahlers, F. J. [2 ]
机构
[1] Phys Tech Bundesanstalt, D-10587 Berlin, Germany
[2] Phys Tech Bundesanstalt, D-38116 Braunschweig, Germany
关键词
Cryogenics - Light amplifiers - Calibration - Quantum Hall effect - Electric currents;
D O I
10.1063/1.4907358
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
An ultrastable low-noise current amplifier (ULCA) is presented. The ULCA is a non-cryogenic instrument based on specially designed operational amplifiers and resistor networks. It involves two stages, the first providing a 1000-fold current gain and the second performing a current-to-voltage conversion via an internal 1 MO reference resistor or, optionally, an external standard resistor. The ULCA's transfer coefficient is highly stable versus time, temperature, and current amplitude within the full dynamic range of +/- 5 nA. The low noise level of 2.4 fA/root Hz helps to keep averaging times short at small input currents. A cryogenic current comparator is used to calibrate both input current gain and output transresistance, providing traceability to the quantum Hall effect. Within one week after calibration, the uncertainty contribution from short-term fluctuations and drift of the transresistance is about 0.1 parts per million (ppm). The long-term drift is typically 5 ppm/yr. A high-accuracy variant is available that shows improved stability of the input gain at the expense of a higher noise level of 7.5 fA/root Hz. The ULCA also allows the traceable generation of small electric currents or the calibration of high-ohmic resistors. (C) 2015 AIP Publishing LLC.
引用
收藏
页数:10
相关论文
共 18 条
[1]  
Drung Dietmar, 2014, 29th Conference on Precision Electromagnetic Measurements (CPEM 2014), P656, DOI 10.1109/CPEM.2014.6898556
[2]   Improving the stability of cryogenic current comparator setups [J].
Drung, D. ;
Goetz, M. ;
Pesel, E. ;
Storm, J. -H ;
Assmann, C. ;
Peters, M. ;
Schurig, Th .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2009, 22 (11)
[3]  
Drung D., IEEE T INSTRUM UNPUB
[4]  
Drung D., 2014, German patent application, Patent No. [10 2012 020 148.6, 102012020148]
[5]   Aspects of Application and Calibration of a Binary Compensation Unit for Cryogenic Current Comparator Setups [J].
Drung, Dietmar ;
Goetz, Martin ;
Pesel, Eckart ;
Barthelmess, Henry J. ;
Hinnrichs, Colmar .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2013, 62 (10) :2820-2827
[6]   A cryogenic current comparator resistance ratio bridge for the range 10 kΩ to 1 GΩ [J].
Fletcher, NE ;
Williams, JM ;
Janssen, TJBM .
2000 CONFERENCE ON PRECISION ELECTROMAGNETIC MEASUREMENTS DIGEST, 2000, :482-483
[7]   Self-Referenced Single-Electron Quantized Current Source [J].
Fricke, Lukas ;
Wulf, Michael ;
Kaestner, Bernd ;
Hohls, Frank ;
Mirovsky, Philipp ;
Mackrodt, Brigitte ;
Dolata, Ralf ;
Weimann, Thomas ;
Pierz, Klaus ;
Siegner, Uwe ;
Schumacher, Hans W. .
PHYSICAL REVIEW LETTERS, 2014, 112 (22)
[8]  
Gallop J., 2006, SQUID HDB, VII, P101
[9]   Towards a quantum representation of the ampere using single electron pumps [J].
Giblin, S. P. ;
Kataoka, M. ;
Fletcher, J. D. ;
See, P. ;
Janssen, T. J. B. M. ;
Griffiths, J. P. ;
Jones, G. A. C. ;
Farrer, I. ;
Ritchie, D. A. .
NATURE COMMUNICATIONS, 2012, 3
[10]   Improved Cryogenic Current Comparator Setup With Digital Current Sources [J].
Goetz, Martin ;
Drung, Dietmar ;
Pesel, Eckart ;
Barthelmess, Henry-Jobes ;
Hinnrichs, Colmar ;
Assmann, Cornelia ;
Peters, Margret ;
Scherer, Hansjoerg ;
Schumacher, Bernd ;
Schurig, Thomas .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2009, 58 (04) :1176-1182