CN115762843A - Be used for super cold atomic magnetic field precision control device - Google Patents

Be used for super cold atomic magnetic field precision control device Download PDF

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Publication number
CN115762843A
CN115762843A CN202211528108.9A CN202211528108A CN115762843A CN 115762843 A CN115762843 A CN 115762843A CN 202211528108 A CN202211528108 A CN 202211528108A CN 115762843 A CN115762843 A CN 115762843A
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China
Prior art keywords
magnetic field
circuit
control circuit
voltage
control
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Pending
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CN202211528108.9A
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Chinese (zh)
Inventor
夏席远
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Hangzhou Kuangtong Quantum Technology Co ltd
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Hangzhou Kuangtong Quantum Technology Co ltd
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Priority to CN202211528108.9A priority Critical patent/CN115762843A/en
Publication of CN115762843A publication Critical patent/CN115762843A/en
Pending legal-status Critical Current

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Abstract

The invention discloses a precise control device for an ultra-cold atomic magnetic field, which comprises a magnetic field sensor, a bias circuit, a control circuit and a current source, wherein the magnetic field sensor is arranged at the position closest to an atom, the magnetic field sensor measures the magnetic field near the atom, the measured magnetic field value is converted into voltage to be input into the bias circuit, the magnetic field sensor is arranged at the position very close to the atom, the measured magnetic field value is firstly conducted into the bias circuit (offset board), the value obtained by processing through a bias circuit is then led into a PID control circuit, the PID target value can be adjusted according to the requirement of the magnetic field size, and the PID control circuit outputs corresponding voltage to control a current source coil to control the magnetic field.

Description

Be used for super cold atomic magnetic field precision control device
Technical Field
The invention relates to the technical field of magnetic field precision control, in particular to a precision control device for an ultra-cold atomic magnetic field.
Background
The precise magnetic field control is crucial to quantum simulation, measurement and calculation based on ultra-cold atomic molecules, an electrified coil and a permanent magnet are mainly used as important tools for generating a required magnetic field, the size of the required magnetic field is different from dozens of milligausses to hundreds of gausses, how to precisely control the magnetic field becomes one of the important tools required by cold atomic application, wherein, reducing magnetic field noise is an important part for precisely controlling the magnetic field, the magnetic field noise consists of a coil for generating the magnetic field and other noises in the environment, the current mainstream magnetic field control mainly comprises passive shielding and active feedback control, at present, the most approximate technical scheme adopts two consistent sensors, and the two sensors are placed at two sides of a cold atom, and are placed into a control circuit by the difference of the measured values of the two sensors, the control circuit mainly consists of two parts, namely a standard voltage and a PID (proportion integration differentiation) control circuit, wherein the standard voltage is used for subtracting the required voltage value, and the control circuit is used for controlling a corresponding current source to achieve the effect of dynamically controlling the magnetic field;
however, the existing ultra-cold atomic magnetic field precise control device needs two magnetic field sensors, is high in cost and complex in control circuit, and has the possibility of mutual interference of the two sensors.
Disclosure of Invention
The invention provides a device for precisely controlling an ultra-cold atomic magnetic field, which can effectively solve the problems that two magnetic field sensors are needed, the cost is high, a control circuit is complex and the two sensors possibly interfere with each other in the prior art.
In order to achieve the purpose, the invention provides the following technical scheme: a precise control device for an ultra-cold atomic magnetic field comprises a magnetic field sensor, a bias circuit, a control circuit and a current source;
the magnetic field sensor is placed at the position closest to the atom, measures the magnetic field near the atom, and converts the measured magnetic field value into voltage to be input into the bias circuit;
the bias circuit consists of two parts, wherein the first part is reference voltage, and the second part is gain adjustment;
subtracting a reference voltage from the voltage measured by the magnetic field sensor, amplifying by using gain adjustment, and inputting into a control circuit, wherein the reference voltage and the gain adjustment are adjusted by corresponding potentiometers;
the control circuit compares the given voltage values obtained from the bias circuit, and then achieves the effect of dynamically balancing the magnetic field by controlling the corresponding current sources.
According to the technical scheme, the operation method comprises the following steps: the magnetic field sensor is arranged at a position very close to an atom, the measured magnetic field value is firstly conducted into a bias circuit (offset board), the value obtained by processing through the bias circuit is then led into the PID control circuit, the target value of the PID can be adjusted according to the requirement of the magnetic field size, and the PID control circuit outputs corresponding voltage to control the current source coil to control the magnetic field.
Compared with the prior art, the invention has the beneficial effects that: the invention uses a magnetic field sensor, realizes magnetic field control of milligauss level with lower cost and simple design, wherein, the reference circuit can realize independent control, so that the fine adjustment and coarse adjustment of the stable magnetic field become very simple and rapid.
Drawings
The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention and not to limit the invention.
In the drawings:
FIG. 1 is a control device profile of the present invention;
fig. 2 is a layout diagram of the bias circuit of the present invention.
Detailed Description
The preferred embodiments of the present invention will be described in conjunction with the accompanying drawings, and it should be understood that they are presented herein only to illustrate and explain the present invention and not to limit the present invention.
The embodiment is as follows: as shown in fig. 1, the present invention provides a technical solution, which is used for an ultra-cold atomic magnetic field precise control device, including a magnetic field sensor (Fluxgate), a bias circuit (offset board), a control circuit (PID control), and a current source (Power Supply);
wherein the magnetic field sensor is placed at a position closest to the atom for measuring the magnetic field in the vicinity of the atom. The magnetic field sensor converts the measured magnetic field value into voltage to be input into the bias circuit;
the bias circuit comprises two parts, wherein the first part is reference voltage, the second part is gain adjustment, the voltage measured by the magnetic field sensor is used for subtracting the reference voltage, and the value obtained by amplifying the voltage by a plurality of times by using the gain adjustment is input into the control circuit, wherein the reference voltage and the gain adjustment can be adjusted by corresponding potentiometers;
the control circuit compares the given voltage values obtained from the programming circuit, and then the effect of dynamically balancing the magnetic field is achieved by controlling the corresponding current sources;
the specific use method comprises the following steps: the magnetic field sensor is arranged at a position very close to an atom, the measured magnetic field value is firstly conducted into an offset circuit (offset board), the value obtained by processing through the offset circuit is then led into a PID control circuit, the target value of the PID can be adjusted according to the requirement of the magnetic field size, and the PID control circuit outputs corresponding voltage to control a current source coil to control the magnetic field.
As shown in fig. 2, IC1 of the bias circuit serves as a reference voltage required to provide the circuit, and IC2 provides the required gain adjustment.
Finally, it should be noted that: although the present invention has been described in detail with reference to the foregoing embodiments, it will be apparent to those skilled in the art that changes may be made in the embodiments and/or equivalents thereof without departing from the spirit and scope of the invention. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present invention should be included in the protection scope of the present invention.

Claims (2)

1. The utility model provides a be used for super cold atomic magnetic field fine control device which characterized in that: the magnetic field sensor, the bias circuit, the control circuit and the current source are included;
the magnetic field sensor is placed at the position closest to the atom, measures the magnetic field near the atom, and converts the measured magnetic field value into voltage to be input into the bias circuit;
the bias circuit consists of two parts, wherein the first part is reference voltage, and the second part is gain adjustment;
subtracting a reference voltage from the voltage measured by the magnetic field sensor, amplifying by using gain adjustment, and inputting into a control circuit, wherein the reference voltage and the gain adjustment are adjusted by corresponding potentiometers;
the control circuit compares the given voltage values obtained from the bias circuit, and then achieves dynamic balance of the magnetic field by controlling the corresponding current sources.
2. The apparatus of claim 1, wherein the operation method comprises: the magnetic field sensor is placed at a position close to an atom, the measured magnetic field value is firstly conducted into an offset circuit (offset board), the value obtained by processing through the offset circuit is then led into a PID control circuit, the target value of the PID can be adjusted according to the requirement of the magnetic field size, and the PID control circuit outputs corresponding voltage to control a current source coil to control the magnetic field.
CN202211528108.9A 2022-12-01 2022-12-01 Be used for super cold atomic magnetic field precision control device Pending CN115762843A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202211528108.9A CN115762843A (en) 2022-12-01 2022-12-01 Be used for super cold atomic magnetic field precision control device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202211528108.9A CN115762843A (en) 2022-12-01 2022-12-01 Be used for super cold atomic magnetic field precision control device

Publications (1)

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CN115762843A true CN115762843A (en) 2023-03-07

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Citations (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SE8603253D0 (en) * 1986-08-22 1986-07-29 Yazaki Corp CROSS-COIL TYPE INDICATING INSTRUMENT
JPS6441523A (en) * 1987-08-07 1989-02-13 Fujitsu Ltd External control type atomic oscillator
CN1200178A (en) * 1995-10-18 1998-11-25 曼那斯曼Vdo公司 Magnetic field sensor
EP1139069A1 (en) * 2000-03-29 2001-10-04 Sony Precision Technology Inc. Magnetic sensor and position transducer
JP2002196100A (en) * 2000-12-27 2002-07-10 Communication Research Laboratory Atomic beam controller, and control method therefor
US6476602B1 (en) * 2000-02-16 2002-11-05 Seagate Technology Llc Temperature compensated hall sensor for testing magnetic recording heads
US20060261889A1 (en) * 2005-05-19 2006-11-23 Giovannotto Roberto M System and method for employing variable magnetic flux bias in an amplifier
KR101137788B1 (en) * 2010-12-10 2012-04-20 한국표준과학연구원 Apparatus for degaussing an external magnetic field
KR20120078965A (en) * 2011-01-03 2012-07-11 한국표준과학연구원 Low field nuclear magnetic resonance apparatus and low field nuclear magnetic resonance method
WO2012154466A1 (en) * 2011-05-06 2012-11-15 Washington State University Research Foundation Magnetorheological devices and associated methods of control
TW201333481A (en) * 2012-02-02 2013-08-16 Delta Electronics Inc Integrated current sensing apparatus
JP2015212628A (en) * 2014-05-01 2015-11-26 大同特殊鋼株式会社 Method for using magnetic sensor and method for determining bias magnetic field of magnetic sensor
US20160139199A1 (en) * 2014-11-14 2016-05-19 Allegro Microsystems, Llc Magnetic Field Sensor with Shared Path Amplifier and Analog-To-Digital-Converter
CN107110905A (en) * 2015-01-08 2017-08-29 桑德克斯有线有限公司 The uneven detector of sensitive DC electric current and calibration method
WO2019040434A2 (en) * 2017-08-21 2019-02-28 Massachusetts Institute Of Technology Chopped bias magnetic field solid-state spin sensor for low-frequency measurements of physical quantities
GB201910213D0 (en) * 2019-07-17 2019-08-28 Npl Management Ltd Atomic magnetometer system
CN113504570A (en) * 2021-07-06 2021-10-15 北京航空航天大学 Underground space detection device based on three-dimensional focusing magnetic field
WO2021228722A1 (en) * 2020-05-14 2021-11-18 Thales Atomic chip for ultra-cold atom inertial sensor and associated sensor

Patent Citations (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SE8603253D0 (en) * 1986-08-22 1986-07-29 Yazaki Corp CROSS-COIL TYPE INDICATING INSTRUMENT
JPS6441523A (en) * 1987-08-07 1989-02-13 Fujitsu Ltd External control type atomic oscillator
CN1200178A (en) * 1995-10-18 1998-11-25 曼那斯曼Vdo公司 Magnetic field sensor
US6476602B1 (en) * 2000-02-16 2002-11-05 Seagate Technology Llc Temperature compensated hall sensor for testing magnetic recording heads
EP1139069A1 (en) * 2000-03-29 2001-10-04 Sony Precision Technology Inc. Magnetic sensor and position transducer
JP2002196100A (en) * 2000-12-27 2002-07-10 Communication Research Laboratory Atomic beam controller, and control method therefor
US20060261889A1 (en) * 2005-05-19 2006-11-23 Giovannotto Roberto M System and method for employing variable magnetic flux bias in an amplifier
KR101137788B1 (en) * 2010-12-10 2012-04-20 한국표준과학연구원 Apparatus for degaussing an external magnetic field
KR20120078965A (en) * 2011-01-03 2012-07-11 한국표준과학연구원 Low field nuclear magnetic resonance apparatus and low field nuclear magnetic resonance method
WO2012154466A1 (en) * 2011-05-06 2012-11-15 Washington State University Research Foundation Magnetorheological devices and associated methods of control
TW201333481A (en) * 2012-02-02 2013-08-16 Delta Electronics Inc Integrated current sensing apparatus
JP2015212628A (en) * 2014-05-01 2015-11-26 大同特殊鋼株式会社 Method for using magnetic sensor and method for determining bias magnetic field of magnetic sensor
US20160139199A1 (en) * 2014-11-14 2016-05-19 Allegro Microsystems, Llc Magnetic Field Sensor with Shared Path Amplifier and Analog-To-Digital-Converter
CN107110905A (en) * 2015-01-08 2017-08-29 桑德克斯有线有限公司 The uneven detector of sensitive DC electric current and calibration method
WO2019040434A2 (en) * 2017-08-21 2019-02-28 Massachusetts Institute Of Technology Chopped bias magnetic field solid-state spin sensor for low-frequency measurements of physical quantities
GB201910213D0 (en) * 2019-07-17 2019-08-28 Npl Management Ltd Atomic magnetometer system
WO2021228722A1 (en) * 2020-05-14 2021-11-18 Thales Atomic chip for ultra-cold atom inertial sensor and associated sensor
CN113504570A (en) * 2021-07-06 2021-10-15 北京航空航天大学 Underground space detection device based on three-dimensional focusing magnetic field

Non-Patent Citations (8)

* Cited by examiner, † Cited by third party
Title
APOORVA ANANT HEGDE: "Noisy Dynamics of U(1) Lattice Gauge Theory in Ultracold Atomic Mixtures", HEIDELBERGER DOKUMENTENSERVER *
APOORVA ANANT HEGDE: "Noisy Dynamics of U(1) Lattice Gauge Theory in Ultracold Atomic Mixtures:", HEIDELBERGER DOKUMENTENSERVER, pages 62 - 66 *
XIAXIYUAN: "Towards a more reliable ultracold mixture platform", HEIDELBERGER DOKUMENTENSERVE, pages 89 *
XIAXIYUAN: "Towards a more reliable ultracold mixture platform", HEIDELBERGER DOKUMENTENSERVER, pages 89 - 92 *
樊浩;王鹏军;张靖;: "用于超冷原子强磁场中空方铜线圈的设计", 量子光学学报, no. 04 *
沈星茂;吴明眼;刘南春;: "偏磁场可控平行载流导线冷原子分束器", 量子电子学报, no. 01 *
王靖斌;陈洁;王心亮;常宏;: "锶原子光钟磁光阱磁场及其控制电路设计", 时间频率学报, no. 02 *
黄剑平;穆瑞珍;林海峰;: "基于电磁感应法的交变磁场测量电路设计", 传感技术学报, no. 02 *

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