A Four-Channel BiCMOS Transmitter for a Quantum Magnetometer Based on Nitrogen-Vacancy Centers in Diamond

被引:3
|
作者
Lotfi, Hadi [1 ]
Kern, Michal [1 ]
Yang, Qing [1 ]
Unden, Thomas [2 ]
Striegler, Nico [2 ]
Scharpf, Jochen [2 ]
Schalberger, Patrick [3 ]
Stoehr, Rainer [4 ]
Schwartz, Ilai [2 ]
Neumann, Philipp [2 ]
Anders, Jens [1 ,5 ,6 ]
机构
[1] Univ Stuttgart, Inst Smart Sensors, D-70569 Stuttgart, Germany
[2] NVis Imaging Technol GmbH, D-89081 Ulm, Germany
[3] Univ Stuttgart, Inst Large Area Microelect, D-70569 Stuttgart, Germany
[4] Univ Stuttgart, Phys Inst 3, D-70569 Stuttgart, Germany
[5] Inst Microelect Stuttgart, D-70569 Stuttgart, Germany
[6] Ctr Integrated Quantum Sci & Technol IQST, D-70569 Stuttgart, Germany
关键词
Nitrogen-vacancy(NV)centers; optically detected magnetic resonance (ODMR); power amplifier (PA); quadrature phase-locked loop (QPLL); quantum sensor; radiofrequency transmitter (RF TX); SiGe BiCMOS; SPIN;
D O I
10.1109/JSSC.2024.3350995
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Quantum sensors based on solid-state defects, such as the nitrogen-vacancy (NV) center in diamond, offer very good room-temperature sensitivity, long-term stability, and the potential for calibration-free measurements. However, most quantum sensors still suffer from a bulky size and weight, low energy efficiency, and high costs, prohibiting their widespread use. Here, we present custom-designed chip-integrated microwave (MW) electronics for a miniaturized, low-cost, and highly scalable quantum magnetometer based on NV centers in diamond. The presented electronics include a quadrature phase-locked loop (QPLL) chip to generate the required local oscillator signal at around 7 GHz with a wide tuning range of 22% and a low phase noise (PN) of - 122 dBc/Hz at 1-MHz offset from a 7-GHz carrier for broadband low-noise magnetometry. In addition, the magnetometer electronics comprise a 4-channel transmitter chip, which can provide currents up to 412 mA(pp) into a custom-designed inductor over a wide frequency range from 6.4 to 8 GHz. In combination with a custom-designed coil, manufactured on a glass substrate for optical transparency, which features a large active area of ( pi x 180 x 180 mu m(2) ), this current is sufficient to produce strong MW magnetic fields up to B-1=(1/2)& sdot;B-ac=170 mu T , enabling pulsed optically detected magnetic resonance (ODMR) experiments. In proof-of-concept ODMR experiments, the presented chip-based spin control system produces fast Rabi oscillations of 5.49 MHz. The measured dc and ac magnetic field limits of detection (LOD) of the presented magnetometer are 32 nT/Hz (1/2) and 300 pT/Hz (1/2) , respectively.
引用
收藏
页码:1421 / 1432
页数:12
相关论文
共 50 条
  • [1] An imaging magnetometer for bio-sensing based on nitrogen-vacancy centers in diamond
    Gould, Michael
    Barbour, Russell
    Chen, Chris
    Zhu, Zhiting
    Fu, Kai-Mei
    FRONTIERS IN BIOLOGICAL DETECTION: FROM NANOSENSORS TO SYSTEMS VI, 2014, 8933
  • [2] Compact integrated magnetometer based on nitrogen-vacancy centres in diamond
    Stuerner, Felix M.
    Brenneis, Andreas
    Kassel, Julian
    Wostradowski, Uwe
    Roelver, Robert
    Fuchs, Tino
    Nakamura, Kazuo
    Sumiya, Hitoshi
    Onoda, Shinobu
    Isoya, Junichi
    Jelezko, Fedor
    DIAMOND AND RELATED MATERIALS, 2019, 93 : 59 - 65
  • [3] DC Magnetometer Based on Ensembles of Nitrogen Vacancy Centers in Diamond
    Lin, Zhao-dong
    Fu, Yue-ping
    Zhang, Shao-wen
    Gao, Jan
    INTERNATIONAL CONFERENCE ON MECHANICAL, ELECTRONIC AND INFORMATION TECHNOLOGY (ICMEIT 2018), 2018, : 69 - 74
  • [4] High-Sensitivity Magnetometry Based on Quantum Beats in Diamond Nitrogen-Vacancy Centers
    Fang, Kejie
    Acosta, Victor M.
    Santori, Charles
    Huang, Zhihong
    Itoh, Kohei M.
    Watanabe, Hideyuki
    Shikata, Shinichi
    Beausoleil, Raymond G.
    PHYSICAL REVIEW LETTERS, 2013, 110 (13)
  • [5] SARS-CoV-2 Quantum Sensor Based on Nitrogen-Vacancy Centers in Diamond
    Li, Changhao
    Soleyman, Rouhollah
    Kohandel, Mohammad
    Cappellaro, Paola
    NANO LETTERS, 2022, 22 (01) : 43 - 49
  • [6] Dynamic Quantum Sensing of Paramagnetic Species Using Nitrogen-Vacancy Centers in Diamond
    Radu, Valentin
    Price, Joshua Colm
    Levett, Simon James
    Narayanasamy, Kaarjel Kauslya
    Bateman-Price, Thomas David
    Wilson, Philippe Barrie
    Mather, Melissa Louise
    ACS SENSORS, 2020, 5 (03) : 703 - 710
  • [7] Solid quantum sensor based on nitrogen-vacancy center in diamond
    Dong Yang
    Du Bo
    Zhang Shao-Chun
    Chen Xiang-Dong
    Sun Fang-Wen
    ACTA PHYSICA SINICA, 2018, 67 (16)
  • [8] High-resolution magnetometry based on nitrogen-vacancy centers in diamond
    Peng Shijie
    Liu Ying
    Ma Wenchao
    Shi Fazhan
    Du Jiangfeng
    ACTA PHYSICA SINICA, 2018, 67 (16)
  • [9] Bright Nitrogen-Vacancy Centers in Diamond Inverted Nanocones
    Jeon, Seong-Woo
    Lee, Junghyun
    Jung, Hojoong
    Han, Sang-Wook
    Cho, Young-Wook
    Kim, Yong-Su
    Lim, Hyang-Tag
    Kim, Yanghee
    Niethammer, Matthias
    Lim, Weon Cheol
    Song, Jonghan
    Onoda, Shinobu
    Ohshima, Takeshi
    Reuter, Rolf
    Denisenko, Andrej
    Wrachtrup, Joerg
    Lee, Sang-Yun
    ACS PHOTONICS, 2020, 7 (10): : 2739 - 2747
  • [10] Perfect selective alignment of nitrogen-vacancy centers in diamond
    Fukui, Takahiro
    Doi, Yuki
    Miyazaki, Takehide
    Miyamoto, Yoshiyuki
    Kato, Hiromitsu
    Matsumoto, Tsubasa
    Makino, Toshiharu
    Yamasaki, Satoshi
    Morimoto, Ryusuke
    Tokuda, Norio
    Hatano, Mutsuko
    Sakagawa, Yuki
    Morishita, Hiroki
    Tashima, Toshiyuki
    Miwa, Shinji
    Suzuki, Yoshishige
    Mizuochi, Norikazu
    APPLIED PHYSICS EXPRESS, 2014, 7 (05)