999精品在线视频,手机成人午夜在线视频,久久不卡国产精品无码,中日无码在线观看,成人av手机在线观看,日韩精品亚洲一区中文字幕,亚洲av无码人妻,四虎国产在线观看 ?

Modulation depth of series SQUIDs modified by Josephson junction area?

2017-08-30 08:26:44JieLiu劉杰HeGao高鶴GangLi李剛ZhengWeiLi李正偉KamalAhmadaZhangYingShan張穎珊JianSheLiu劉建設andWeiChen陳煒
Chinese Physics B 2017年9期
關鍵詞:建設

Jie Liu(劉杰),He Gao(高鶴),Gang Li(李剛),Zheng Wei Li(李正偉), Kamal Ahmada,Zhang Ying Shan(張穎珊),Jian She Liu(劉建設),and Wei Chen(陳煒),?

1 Tsinghua National Laboratory for Information Science and Technology,Department of Microelectronics and Nanoelectronics, Institute of Microelectronics,Tsinghua University,Beijing 100084,China

2 Key Laboratory of Particle Astrophysics,Institute of High Energy Physics,Chinese Academy of Sciences,Beijing 100049,China

3 University of Chinese Academy of Sciences,Beijing 100049,China

Modulation depth of series SQUIDs modified by Josephson junction area?

Jie Liu(劉杰)1,He Gao(高鶴)2,3,Gang Li(李剛)1,Zheng Wei Li(李正偉)2, Kamal Ahmada1,Zhang Ying Shan(張穎珊)1,Jian She Liu(劉建設)1,and Wei Chen(陳煒)1,?

1 Tsinghua National Laboratory for Information Science and Technology,Department of Microelectronics and Nanoelectronics, Institute of Microelectronics,Tsinghua University,Beijing 100084,China

2 Key Laboratory of Particle Astrophysics,Institute of High Energy Physics,Chinese Academy of Sciences,Beijing 100049,China

3 University of Chinese Academy of Sciences,Beijing 100049,China

The superconducting quantum interference device(SQUID)amplifier is widely used in the field of weak signal detection for its low input impedance,low noise,and low power consumption.In this paper,the SQUIDs with identical junctions and the series SQUIDs with different junctions were successfully fabricated.The Nb/Al-AlOx/Nb trilayer and input Nb coils were prepared by asputtering equipment.The SQUID devices were prepared by a sputtering and the lift-off method. Investigations by AFM,OM and SEM revealed the morphology and roughness of the Nb films and Nb/Al-AlOx/Nb trilayer. In addition,the current–voltage characteristics of the SQUID devices with identical junction and different junction areas were measured at 2.5 K in the He3refrigerator.The results show that the SQUID modulation depth is obviously affected by the junction area.The modulation depth obviously increases with the increase of the junction area in a certain range.It is found that the series SQUID with identical junction area has a transimpedance gain of 58 ? approximately.

superconducting quantum interference device(SQUID),Josephson junction,transition edge sensor

1.Introduction

Superconducting transition edge(TES)detectors have been adopted as bolometric detectors for millimeter[1,2]and submillimeter wavelength detection owing to their good performance on noise,response speed,linearity,and the fact that they can be fabricated into large arrays and read out by multiplexing techniques.[2–7]Moreover,the years since 2005 have also witnessed the emergence and applications of complete x-ray and γ-ray spectrometers based on arrays of superconducting transition-edge sensors(TESs).[8]A superconducting quantum interference device(SQUID)can be used to read out a transition edge sensor(TES)because of its low noise,low input impedance,and high resolution.[6,9–14]The reason why the gain of a single SQUID amplifier is too small to read out the transition edge sensor is that the voltage noise of a typical DC SQUID is about two orders of magnitude lower than the input noise of the best room temperature amplifier.[15–18]There are mainly two solutions to the problem.One is to use a series SQUID amplifier.[13]The other is a two-stage series array of SQUID amplifiers which is made of a single SQUID and an array of SQUID amplifiers.[13,15]In addition,the modulation depth has a pronounced effect on the performance of series SQUID.[16,19,20]The modulation depth can be affected by the screening parameter(βL),junction area,and shunt resistor.Therefore,it is very important to investigate the performance of the series SQUID.However,there is little detailed comparison analysis of the series SQUID electrical properties, particularly in the aspect of modulation depth,for different McCumber–Stewart parameter(βc)modified by the Josephson junction area.

In this report,we present the influence of the McCumber–Stewart parameter βcmodified by the Josephson junction area on the modulation depth.Through the series SQUID amplification,it can accomplish a higher transimpedance gain.The critical current,modulation curve,and amplification gain of SQUID corresponding to different junction areas have been investigated.The relationship among modulation depth,junction area,and critical current is studied experimentally.The electrical characteristics of four series SQUID devices are also tested.

2.Fabrication and testing

2.1.Device design and fabrication

We successfully fabricated a 2-inch device wafer,as shown in Fig.1(a),which consists of the typical series SQUIDs cell,as shown in Fig.1(b).Figure 2(a)is the optical micrograph of a typical series SQUID device.Figure 2(b) shows the typical electric circuit of the series SQUID ampli-fi er corresponding to Fig.2(a).During the fabrication of the SQUID amplifier,the Josephson junction as the basic component has a crucial effect on the device.We choose the Josephson junction of Nb/Al-AlOx/Nb trilayer structure as the basic element of SQUID.Because this sandwich structure can be achieved via ultra-high vacuum sputtering,avoiding air pollution,thus ensuring the formation of a high-quality barrier structure.At the same time,Al can be used as a natural blocked layer for reactive ion etching during junction definition and the preparation of through-holes,which is helpful to precisely control the etching depth during the fabrication process.The five steps of the photolithography process to fabricate the Josephson junction and SQUID process are as follows.

(i)A 400 nm thick SiO2film is grown by thermal oxidation on the surface of a 2-inch〈100〉crystalline N-type singlesided polished Si wafer.Considering that the SiO2layers are very thin,prior to the lithography,they are cleaned by an ultrasonic cleaning method with acetone and alcohol to ensure that there are no residual organics and air pollutants which may cause device failure.

(ii)Trilayer deposition A Nb/Al-AlOx/Nb trilayer is deposited over an entire oxidized-Si wafer and patterned to defi ne the SQUID washer,capacitors,and bonding pads.This layer can be easily and quickly patterned using a lift-off method.

(iii)Junction definition This step is used to pattern the shape of the Josephson junction.The second lithography is carried out through the negative photoresist NR9-3000PY, which aims to define the junction area on the three-layer film surface.Then,the top Nb films are etched by ICP5100 with SF6.Afterwards,the deposited SiO2film can be used as the dielectric insulator,which could isolate the Josephson junction bottom electrode and the Nb wiring layer.It should be noted that the NR9-3000PY employed during the lithography process may cause the exposure area to exhibit an inverted trapezoid,which in turn results in that the obtained Josephson junction area is smaller than the design value.This can be manifested in Subsection 3.2.

(iv)Depositing resistor layer Pt resistor is mainly used to eliminate the hysteresis of the Josephson junction,thus achieving a single value of over-damping Josephson junction. The Pt shunt resistors are deposited by a sputtering equipment and patterned using a lift-off stencil.The Pt layer is deposited by Lab18 sputtering equipment.The typical sheet resistance is 0.6–0.9 ?/square.Before sputtering Pt,we need to sputter a layer of Ti with a thickness of 8 nm in order to increase the surface adhesion.

(v)Depositing Nb wiring layer A Nb wiring layer is deposited and patterned to define the modulation coil (10μm linewidth),interconnects,and feedback coil(10μm linewidth).The Nb wiring layer is patterned using a lift-off stencil.A de-oxidation process is performed prior to sputtering the upper electrode with a thickness of 260 nm.

Fig.1.(color online)(a)Fabricated SQUID device wafer.(b)A typical series SQUID cell.

Fig.2.(color online)(a)The typical optical micrograph of series SQUID device.(b)The typical electric circuit of series SQUID amplifier.

2.2.Device testing

The Josephson junction and SQUID performance tests are carried out in a Janis He3refrigerator,mainly consisting of four temperature zones,namely,296 K,40 K,3 K,and 0.3 K.The SQUID test is mainly carried out at 3 K.The detailed device testing system has been described in our previous report.[19]

3.Results and discussion

3.1.Morphology and topography of Nb and trilayer films

The Nb,Nb/AlOx,and Nb/AlOx/Nb films fabricated under the conditions described above have been characterized by AFM.Figure 3 shows the morphology of Nb,Nb/AlOx, and Nb/AlOx/Nb trilayer deposited on silicon oxide substrates. The trilayer film is very smooth,though the roughness is increased with the increase of the layers,as can be seen from Fig.3.The detailed deposition parameters are listed in Table 1. The surface roughness is 0.698 nm,1.04 nm,and 1.29 nm for the layers of Nb,Nb/AlOx,and Nb/AlOx/Al/Nb,respectively, based on the AFM.

Table 1.Deposition parameters of films.

Fig.3.(color online)AFM photographs of(a)Nb film,(b)Nb/AlO x,(c)Nb/AlO x/Nb layer.(d)Morphology of Nb/AlO x with the area of 5μm×5μm.

3.2.Series SQUID characteristics with different junction areas

Figure 4 shows the SEM photographs of the fabricated series SQUID amplifiers with different junction areas.As can be seen from Fig.4,there is a deviation between the design value and the actual size.This phenomenon is due to the exposure area as discussed in Subsection 2.2.The size of the fabricated devices is not the same as the designed layout exactly.Detailed actual dimensional values of the SQUIDs are listed in Table 2.

Table 2.Parameters of fabricated series SQUID amplifiers.The 1st SQUID,2nd SQUID,3rd SQUID,and 4th SQUID are corresponding to the red circles from left to right shown in Fig.4(a).

Figure 5 shows the I–V characteristics of series SQUIDs with different junction areas.It can be seen that the critical current is increased with the junction area increasing from 5.3μm2to 22.5μm2.The critical current density is 270–300 A/cm2.

Fig.4.(color online)(a)SEM photographs of fabricated series SQUID amplifiers with different junction areas.The detailed structure and practical junction area corresponding to the red circle in each SQUID:(b) 22.5μm2,(c)15.9μm2,(d)8.2μm2,(e)5.3μm2.

Fig.5.(color online)The critical current of series SQUIDs with different junction areas.A:5.3μm2,B:8.2μm2,C:15.9μm2,D:22.5μm2 (the critical currents are 30μA,50μA,84μA,and 124μA,respectively).

Figure 6 shows the modulation curve of SQUIDs with different junction areas under varying bias currents.The bias currents chosen are 31.28μA,51.01μA,88.59μA,and 130.51μA for junction areas of 5.3μm2,8.2μm2,15.9μm2, and 22.5μm2,respectively,according to the I–V characteristics shown in Fig.5.It can be seen that the modulation period of the SQUID with different Josephson junction area is about 8.3μA,which is because the same mutual inductance due to the same washer structure and the turns of input coils. But it should be noted that the modulation depth,as shown in Fig.6,is increased as the junction area increases,which is 13μV,32μV,66μV,and 106μV.For simplicity,the modulation depth can also be estimated as follows:

where ΔV is the modulation depth,Ic0is the critical current, and Φ0is the magnetic flux quantum.According to Eqs.(1) and(2),the detailed calculation results are listed in Table 3.It can be observed that the experimental results are in agreement with our theoretical calculation as shown in Fig.7.Figure 8 shows the amplification curves of SQUIDs with junction areas of(a)3.46μm2,(b)5.72μm2,(c)15.9μm2,(d)22.8μm2.As can be seen in Fig.8,the input current(peak-to-peak)value is 2μA,the output voltage(peak-to-peak)is 7.6μV,13.5μV, 31μV,and 61μV,which means that the derived SQUID amplifier gain could be 3.8 ?,6.45 ?,15.5 ?,and 31.5 ?,respectively.

Table 3.The calculated modulation depth ΔV of SQUIDs with different Josephson junction areas A.

Fig.6.(color online)Modulated curve of series SQUIDs with different junction areas under different bias currents.The bias current based on the different junction area is 31.28μA(5.3μm2),51.01μA(8.2μm2), 88.59μA(15.9μm2),130.51μA(22.5μm2)for different junction area.The corresponding modulation depth is 13μV,32μV,66μV, and 105μV,respectively.

Fig.7.(color online)Comparison of experimental results and theoretical calculation values of modulation depth of SQUIDs with different Josephson junction areas.

Fig.8.(color online)Amplification curves of SQUIDs with different junction areas of(a)5.3μm2,(b)8.2μm2,(c)15.9μm2,(d) 22.5μm2.

3.3.Series SQUID characteristics with identical junction area

As shown in Subsection 3.2,there exists a highest modulation depth when the Josephson junction of SQUID has an area of 22.5μm2.However,it should be pointed out that the McCumber–Stewart parameter(βc=1)lies in a critical state. As reported by Clarke et al.,[16,17]for the under damped junctions with βc>1,the relationship between current and voltage in the hysteresis region is not a single valued function. To avoid this under damped situation and to obtain a relatively high amplification gain,it would be better to fabricate series SQUIDs with identical junction area of 15.9μm2in our study.

Fig.9.(color online)Photographs of fabricated series of SQUID amplifier with identical junction area of 15.9μm2 wire bonding onto a PCB circuit board.

Fig.10.(color online)(a)Critical current of four series SQUIDs with the same junction area.(b)Amplification curve of four series SQUIDs with identical junction area.

Figure 9 displays a series SQUID consisting of four identical SQUIDs with the junction area of 15.9μm2bonding onto a PCB circuit board.As can be seen from Fig.10(a),the critical current is about 90μA under these circumstances.As shown in Fig.10(b),the input current peak-to-peak value is 1μA,the output voltage peak-to-peak value is 58μV,indicating that the SQUID amplifier gain is derived as 58 ?,which is in accordance with the results above,four times of amplification gain of single SQUID with an area of 15.9μm2,as shown in Fig.8(c).

4.Conclusion

The series SQUIDs have been designed and fabricated successfully.The trilayer Nb/Al-AlOx/Nb fabricated by sputtering in Ar atmosphere is quite smooth.It is found that the high quality Josephson junction with stable critical current density can be produced via this fabrication process.By variation of the junction area,the amplification gain is increased from 3.8 ? to 31.5 ? for each single SQUID.As for the four series SQUIDs with the identical Josephson junction area,the amplification gain can be up to 58 ?.

[1]Lee A T,Richards P L,Nam S W,Cabrera B and Irwin K 1996 Appl. Phys.Lett.69 1801

[2]Zhang Q Y,Wang T S,Liu J S,Dong W H,He G F,Li T F,Zhou X X and Chen W 2014 Chin.Phys.B.23 118502

[3]Li H,Zhang S L,Qiu Y,Zhang Y S,Zhang C X,Kong X Y and Xie X M 2015 Chin.Phys.B.24 028501

[4]Qiu Y,Liu C,Zhang S L,Zhang G F,Wang Y L,Li H,Zeng J,Kong X Y and Xie X M 2014 Chin.Phys.B 23 088503

[5]Schwan D,Bertoldi F,Cho S,Dobbs M,Guesten R,Halverson N, Holzapfel W,Kreysa E,Lanting T and Lee A 2003 New Astron.Rev. 47 933

[6]Irwin K D and Hilton G C 2005 Cryogenic Particle Detection(New York:Springer)p.63

[7]Irwin K 1995 Appl.Phys.Lett.66 1998

[8]Ullom J N and Bennett D A 2015 Supercond.Sci.Technol.28 084003

[9]de Korte P A,Beyer J,Deiker S,Hilton G C,Irwin K D,MacIntosh M,Nam S W,Reintsema C D,Vale L R and Huber M E 2003 Rev.Sci. Instrum.74 3807

[10]Irwin K,Niemack M,Beyer J,Cho H,Doriese W,Hilton G,Reintsema C,Schmidt D,Ullom J and Vale L 2010 Supercond.Sci.Technol.23 034004

[11]Mates J,Hilton G,Irwin K,Vale L and Lehnert K 2008 Appl.Phys. Lett.92 023514

[12]Chervenak J,Irwin K D,Grossman E N,Martinis J M,Reintsema C D and Huber M 1999 Appl.Phys.Lett.74 4043

[13]Huber M E,Neil P A,Benson R G,Burns D A,Corey A M,Flynn C S, Kitaygorodskaya Y,Massihzadeh O,Martinis J M and Hilton G 2001 IEEE T.Aaapl.Supercon.11 1251

[14]Pr?ele D,Voisin F,Piat M,Decourcelle T,Perbost C,Chapron C,Rambaud D,Maestre S,Marty W and Montier L 2016 J.Low Temp.Phys. 184 363

[15]Tuttle J,DiPirro M,Shirron P,Welty R and Radparvar M 1996 Cryogenics 36 879

[16]Clarke J and Braginski A I 2004 The SQUID Handbook Vol.1 p.34

[17]Clarke J,Goubau W M and Ketchen M B 1976 J.Low Temp.Phys.25 99

[18]Tesche C D and Clarke J 1977 J.Low Temp.Phys.29 301

[19]Chen Z,He G F,Zhang Q Y,Liu J S,Li T F and Chen W 2015 Acta Phys.Sin.64 128501(in Chinese)

[20]Weinstock H 2012 SQUID Sensors:Fundamentals,Fabrication and Applications.(Berlin:Springer Scienceamp;Business Media)

29 March 2017;revised manuscript

24 May 2017;published online 18 July 2017)

10.1088/1674-1056/26/9/098501

?Project supported by the National Natural Science Foundation of China(Grant No.11653001),the National Basic Research Program of China(Grant No.2011CBA00304),and Tsinghua University Initiative Scientific Research Program,China(Grant No.20131089314).

?Corresponding author.E-mail:weichen@tsinghua.edu.cn

?2017 Chinese Physical Society and IOP Publishing Ltd http://iopscience.iop.org/cpb http://cpb.iphy.ac.cn

猜你喜歡
建設
自貿區建設再出發
中國外匯(2019年18期)2019-11-25 01:41:56
基于IUV的4G承載網的模擬建設
電子制作(2018年14期)2018-08-21 01:38:28
《人大建設》伴我成長
人大建設(2017年10期)2018-01-23 03:10:17
保障房建設更快了
民生周刊(2017年19期)2017-10-25 10:29:03
數字電視分前端建設隨談
野三化冶建設
“三化”建設
“三化”建設
“三化”建設
“三化”建設
主站蜘蛛池模板: 一级毛片免费不卡在线 | 国产欧美日韩精品第二区| 国产午夜无码片在线观看网站 | 全色黄大色大片免费久久老太| 色亚洲成人| 91毛片网| 91精品专区国产盗摄| 无码免费的亚洲视频| 亚洲AV无码乱码在线观看代蜜桃 | 美女高潮全身流白浆福利区| 久久国产精品麻豆系列| 国产福利微拍精品一区二区| 午夜视频www| 毛片免费在线视频| 日本不卡在线播放| 精品国产自在在线在线观看| 高清久久精品亚洲日韩Av| 又爽又大又光又色的午夜视频| 国产在线日本| 亚洲第一色网站| 日本午夜在线视频| 国产男人天堂| 国产综合网站| 国产成熟女人性满足视频| 视频一区亚洲| 在线观看av永久| 在线无码私拍| 国产精鲁鲁网在线视频| 波多野结衣无码中文字幕在线观看一区二区 | 2021最新国产精品网站| 一本大道东京热无码av| av无码一区二区三区在线| 狠狠亚洲五月天| 成年看免费观看视频拍拍| 欧美亚洲激情| 91青青视频| 国产视频一二三区| 中文字幕 欧美日韩| 国产成人在线小视频| 噜噜噜综合亚洲| 欧美不卡在线视频| 亚洲欧美成人网| 欧美精品色视频| 日韩高清在线观看不卡一区二区| 99久久精品免费看国产电影| 91小视频版在线观看www| 丝袜美女被出水视频一区| 久草热视频在线| 国产精品无码制服丝袜| 亚洲天堂视频在线观看免费| 色吊丝av中文字幕| 国产成人高清在线精品| 搞黄网站免费观看| 一级成人a做片免费| 久久免费视频6| 国产精品成| 毛片久久网站小视频| 亚洲不卡影院| 国产欧美另类| 国产第一页第二页| 国产黄网永久免费| 波多野衣结在线精品二区| 亚洲一区精品视频在线 | 日韩不卡免费视频| 国产乱子伦手机在线| 欧美日韩精品综合在线一区| 中文字幕在线播放不卡| 国产凹凸一区在线观看视频| 真实国产乱子伦高清| 国产00高中生在线播放| 88国产经典欧美一区二区三区| 又黄又爽视频好爽视频| 欧美天堂久久| 午夜毛片免费观看视频 | 国产精品女主播| 秋霞午夜国产精品成人片| 国产亚洲视频在线观看| 丰满人妻中出白浆| 国产精品亚洲综合久久小说| 国产情精品嫩草影院88av| 免费一级α片在线观看| 无码免费视频|