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1、南京理工大學結(jié)課論文 課程名稱:Materials Physics 論文題目:High Temperature Superconductors 姓 名: 周紅云 學 號: 授課教師: 徐鋒 ContentsAbstract31 Introduction42 Development of HTS Materials62.1 HTS Bulk62.2HTS Wires82.2.1 First-Generation HTS Wires82.2.2 Second-Generation HTS Wires102.3 HTS Thin Films113 Theory and Mechanism of Hi
2、gh Tc Superconductivity123.1 Magnetic Resonance Theory123.2 Electron-Lattice Interactions123.3 Circulating Currents Theory133.4 Pseudogap143.5 Electron Spin Theory164 Applications of HTS Materials175 Conclusions18References19AbstractTwenty years after the discovery of hightemperature superconductors
3、 (HTSs), the HTS materials now have been well developed. Meanwhile the mechanism of superconductivity is still one of the topical interests in physics. At present, the focus on the applied HTS technology has been moving to the industrial preparations from the laboratory research stage, and the techn
4、ology has been well verified for practical applications from small to large scales. The fabrication techniques of engineering HTS materials are being industrialized; and various HTS devices are also on the way towards practical applications. This paper provides a comprehensive summary on the applied
5、 high temperature superconductivity with regard to various applicable HTS materials, their preparation techniques and characterization, and applications in a wide range.Index TermsHigh temperature superconductivity,high temperature superconductor, high temperaturesuperconducting theory1 Introduction
6、When the temperature was 23K(minus 250), human first discovered superconducting effect. Later the effect was discovered at a higher temperature ,it is called “high-temperature superconductors”. After the discovery of the high-temperature superconductors (HTSs)by Bednorz and muller1 and the succeedin
7、g discovery of superconductivity above liquid nitrogen temperatures by Wu et al., many scientists and engineers believed that a breakthrough for broad commercial applications of superconducting components was likely to occur in the following years. Primarily ,this discovery initiated a gold rush in
8、research and development on this new material class leading to the discovery of a large number of oxide superconducting compounds with Tc up to 164 K2. However ,when the very peculiar physical properties of the oxide superconductors became more and more enlightened, material researchers and engineer
9、s were confronted with many hurdles which had to be overcome before any useful could be envisaged.The development of applicable HTS materials has progressed on several routes. HTS single crystals are not suitable for applications due to their small size and their low critical current density (Jc) as
10、 a consequence of a low density of pinning centers. However, the “quick and dirty”version melt-textured HTS bulk material shows superb magnetic pinning properties and are already applied as high-field permanent magnets, e.g. in magnetic bearings, motors, large current leads and magnetic separation3.
11、Superconducting material has two main advantages: (1) Flow capacity is large , wire current density up to 106 A/cm2 number.The wound coil canprepare very strong magnetic ,when applicated into electrical equipment, it can greatly reduce the weight and volume of the equipment , improve equipment capac
12、ity density ; ( 2 ) zero-resistance properties, can completely solve the problem of transmission lossesand improve the efficiency of the equipment significantly. The development of applicable HTS materials has progressed on several routes. HTS single crystals are not suitable for applications due to
13、 their small size and their low critical current density(Jc) as a consequence of a low density of pinning centers. However, the”quick and dirty” version melt-textured HTS bulk material shows superb magnetic pinning properties and are already applied as high-field permanent magnets, e.g. in magnetic
14、bearings, motors, large current leads and magnetic separation.In spite of the ceramic nature of the cuprate oxides, flexible HTS wires or tape are obtained either by embedding HTS as thin filaments in a silver matrix or by HTS coating of metal carrier tapes. HTS wires are moving into the second gene
15、ration (2G) of their development. The first generation (1G) relied on bismuth strontium calcium copper oxide (BSCCO), specifically Bi-2212 and Bi-2223. 1 km class long Bi-2223/Ag wires have already been fabricated and several applications have been demonstrated intensively6. The 2G is based on yttri
16、um barium copper oxide (YBCO), which has the potential to be less expensive and to perform better. The development of YBCO-coated conductor technology is making possible the design and fabrication of smaller, lighter, and more efficient power devices such as transmission cables, motors, generators,
17、transformers, and fault-current limiters that can be operated at temperatures approaching that of liquid nitrogen.Epitaxial HTS thin films achieve excellent superconducting properties that are well-suited for superconductive electronics. HTS Josephson junctions based either on Josephson tunneling th
18、rough ultra-thin artificial barriers or on the Josephson junction behavior of HTS grain boundaries have become available; they can be used for the construction of highly sensitive magnetic field sensors of superconducting quantum interference devices (SQUIDs)4 HTS thin films are increasingly applied
19、 for the manufacturing of diverse microwave devices for the mobile and satellite communication. Intensive researches on these microwave applications include passive microwave devices and active microwave devices. Moreover, HTS films can be applied into digital circuit, voltage standard and so on.2 D
20、evelopment of HTS Materials2.1 HTS BulkDevelopment of bulk superconducting materials with superior electromagnetic properties is one of the most promising ways to exploration of HTSs in practice. Over the past 20 years, there are many kinds of HTS bulks having got great development, such as: YBa2Cu3
21、O7-(Y-123), LRE-B2C3Oy “LRE-123” (RE=Sm, Gd, Nd, Eu···) and BSCCO (Bi-2223 and Bi-2212).HTS Y-123 bulk growth techniques have experienced 4 stages. 1) Solid state sintering (1987): the bulks have small coherence length and large anisotropy, high-angle grain boundaries in the solid act
22、 as weak links for supercurrents. 2) Melt processing (1989): the main fabrication methods include: melt texture growth (MTG), quench melt growth (QMG liquid phase process (LPP), powder melt process (PMP), melt powder melt growth (MPMG), solid-liquid melt growth (SLMG), and melt-quenched pressurized
23、partial-melt growth (MQPPMG). All these variations of the melt-growth process for Y-123 involve the slow cooling of a mixture of Y-211 phases and a liquid phase through the peritectic temperature. 3) Top-seeded melt-texture growth(TSMTG): the method enables the growth of very large single-grained YB
24、CO sample up to several centimeters in diameter and thickness, and the bulk can resolve weak-link problem of grain boundary and the weak flux pinning problem. In these methods, Y-123 crystal is difficult to form core in solution and cannot grow steady, so it is very difficult to prepare single cryst
25、al. Fig.1 illustrates the top-seeded melt-texture growth method. 4) Solute rich liquid crystal pulling (SRLCP)17: after 1993, the method of preparing single crystal HTS bulk has been studied. One of the useful methods for obtaining large scale single crystals under controlled crystal growth is the c
26、rystal pulling methodand its modified SRLCP method more suitable for continuous growth5.Fig. 1. Schematic illustration of the TSMTG method.Recently, the Y-123 has enabled trapping of magnetic field above 17 T. It was realized by a treatment which improves the mechanical properties as well as thermal
27、 conductivity of a bulk Y-Ba-Cu-O magnet, thereby increasing its field-trapping capacity. First, resin impregnation and wrapping the materials in carbon fiber improve the mechanical properties. Second, a small hole drilled into the centre of the magnet allows impregnation of Bi-Pb-Sn-Cd alloy into t
28、he superconductor and inclusion of an aluminum wire support, which results in a significant enhancement of thermal stability and internal mechanical strength. As a result, 17.24 T was trapped, without fracturing, in a bulk YBCO sample of 2.65 cm diameter at 29 K.The LRE-Ba2Cu3Oy (LRE-123) family dif
29、ferent from Y-123 shows that the replacement of Y by Nd, Sm, Gd, Eu,and some other light rare earth (LRE) results in a particular pinning even in an ideally oxygenated state, namely in the absence of oxygen-deficient clusters. When melting in air, a substitution of trivalent LRE for bivalent Ba take
30、s place,leading to a depression of a hole or carrier concentration and thereby resulting in a low Tc. To avoid this undesirable effect, the oxygen controlled melt growth (OCMG) process can be developed6. Under melt processing of the LRE-123 compound in a reduced oxygen atmosphere, a LRE/Ba substitut
31、ion is largely suppressed and Tc values of these systems reached 96 K, which has never been achieved before in the Y-123 system.MgO seeds proved to be efficient in the growth orientation control of large grain LRE-123 pellets when a small quantity of ZnO was added, accompanied by a substantial reduc
32、tion of liquid phase loss. Perfect facet lines growing up to the pellet bottom demonstrated excellent melt growth. Field distribution contour maps at the top and bottom surfaces were nearly identical. Magnetization measurements indicated that flux pinning performance improved continuously with incre
33、asing ZnO content up to 0.035 mol%, with critical current density reaching 105 A/cm2 at 3 T and 77 K.For bismuth strontium calcium copper oxide (BSCCO) bulks, there are two systems for engineering applications:Bi2Sr2Ca2Cu3O10 (Bi-2223) with Tc of 110 K and Bi2Sr2Ca1Cu2O8 (Bi-2212) with Tc of 80 K to
34、 90 K. Unlike yttrium barium copper oxide (YBCO) or REBCO, flux pinning of BSCCO is extremely weak, mainly due to a strong anisotropy. The main bulk-type applications of BSCCO for current leads and fault current limiters are in rod, tubular, and plate forms. Bi-2223 rod is usually prepared by normal
35、 sintering, hot forging process, and cold isostatic pressing method7. Due to extremely large anisotropy, textured structure is easy to obtain.Bi-2212 rod can be made by a partial melting process, and more textured structure is obtained than that of Bi-2223.One of the more successful techniques for f
36、abricating Bi-2212 tubes is the melt cast process, these are manufactured by cutting these tubes to bifilar coils. At the operation temperature of 65 K, a current density of 4 kA/cm2 was achieved. Due to the progress in material development, BSCCOs superconducting bulk materials show very good prosp
37、ects for technological and economical viability, such as use in resistive type current limiters 8.2.2HTS WiresHTS wires (tapes) are moving into the second generation (2G) of their development. The first generation (1G) relied on BSCCO102-104, whereas the 2G is based on YBCO, which has the potential
38、to be less expensive and to perform better. One of the main challenges in developing high performance superconductors has been the brittleness of many of the most promising materials to be drawn into wires that can carry current, yet recent developments allow fabrication of superconductor wires and
39、tapes. First-Generation HTS WiresThe most commonly used materials for the HTS wires in the early stage are bismuth-based, specifically Bi-2212 and Bi-2223. These materials and their wire products, especially the Bi-2223 Ag clad multifilament wires, are known as the 1G of HTS wires and have been used
40、 to demonstrate a variety of HTS heavy current devices.The oxide powder in tube (OPIT) technology is the well established route for the commercial fabrication of Bi-2223 Ag clad ribbon type conductors9, as shown in Fig.2. At the beginning of the process, rods of isostatically pressed oxide powder ar
41、e inserted into a silver or silver alloy tube. This tube is then sealed with Cu or silver plugs and evacuated to remove air and moisture. After vacuum closing the billets are drawn down to a final diameter determined by the number of filaments and ultimate tape dimensions, the mono filamentary wire
42、is then cut and re-bundled into an alloy tube. Subsequently, the billet is evacuated again, closed and cold worked to a final diameter around 2 mm, and the single filament thickness of this multifilament wire is around 100 m for example. The wire fabrication is followed by the thermo-mechanical trea
43、tment, a repeated process of rolling and heat treatments. This process is designed to establish phase compositions and to engineer the microstructure. Its Jc has reached near 105 A/cm2(77 K, 0T), and engineering current density (Je)104/cm2. The most influential parameters to accomplish a high perfor
44、mance product are the phase content of the precursor powder, the deformation parameters of the composite during the cold working process, and the heat treatment parameters, i.e. time, atmosphere, temperature. The practical performance of the 1G HTS wires, i.e. The current density, long length with f
45、lexible winding capability,and production maturity, has arrived at the level of industrialization10.Fig. 2. Flow chart of the OPIT process of the multi-filamentary composite HTS wire. Second-Generation HTS WiresDue to the higher cost of 1G wire and the intrinsic properties of YBCO, the researchers h
46、ave shifted their efforts toward the development of second-generation (2G) HTS wires as a so-called YBCO coated conductor to replace the 1G Bi-2223 OPIT tape. The important advantages of 2G wires over 1G wire are that YBCO has better in-field electrical performance at higher temperatures, a potentia
47、lly lower-cost fabrication process,and low alternating current(ac) losses.YBCO has useful magnetic properties at 77 K, but is highly susceptible to magnetic field degradation in the transport current due to weak-links resulting from highangle grain boundaries. The solution to this grain boundary pro
48、blem for YBCO is to produce “textured” substrate that will provide a template for growing biaxially textured films of YBCO with low-angle boundaries.Typically, 2G HTS wires have three components: flexible metal substrate, buffer layers, and YBCO superconductor layers. Several methods were developed
49、to obtain biaxially textured metal substrates suitable for fabricating high-performance YBCO coated conductors.They are ion-beam assisted deposition (IBAD), rollingassistedbiaxially textured substrates (RABiTS)and inclined-substrate deposition (ISD)11.Methods to produce textured templates for growin
50、g high-performance YBCO coated conductor wires include IBAD-YSZ (Yttria-stabilized-zirconia), IBAD-MgO, IBAD-GZO (Gd2Zr2O7), ISD-MgO, RABiTS, etc. On these templates, high-deposition-rate YBCO processes are being used to deposit the superconductor films, such as high-rate pulsed-laser deposition (HR
51、-PLD), as shown in Fig.3, metal-organic deposition (MOD), chemical vapor deposition (CVD), metal-organic chemical vapor deposition (MOCVD), trifluoroacetate-based metalorganic deposition (TFA-MOD), electron beam evaporation, electron beam co-evaporation, and sol-gel. The main challenge is how combin
52、ing the oriented template concept and superconductor deposition process to fabricate HTS tapes in kilometer lengths.Fig.3 A schematic diagram of a PLD apparatus for forming Y-123 film coatings on rolling textured Ag tapes12. To increase YBCO film thickness or find a way to incorporate two layers of
53、YBCO in single-wire architecture, either double sided coating or joining two YBCO tapes face to face would then give performance exceeding 1G wire, i.e.high overall Je at 77 K.The industry standard for characterizing the 2G wire is to divide the current by the width of the wire. With either a 3m-thi
54、ck YBCO layer carrying a critical current density of 1×106 A/cm2 or 1 m-thick YBCO layer carrying a critical current density of 3×106A/cm2, the electrical performance would be 300 A/cm-width. Converting these numbers to the industry standard of 0.4 cm-wide HTS wire would correspond to 120
55、A, which is comparable to that of the commercially available 1G wire.2.3 HTS Thin Films Since the discovery of the first HTS, a significant effort has been put into the research on and realization of textured and epitaxial HTS films. This effort is motivated largely by the potential applications of
56、thin films in a number of electronic devices and by the possibility of using epitaxial single or multilayer HTS films to study new physical properties of these unique layered materials.YBCO and Tl-HTS (Tl-2212) thin films are nowadays produced in quantities of several thousand wafers per year for co
57、mmercial and military microwave filters.Recently, improvement of the microwave properties has been achieved, however, at the expense of similar tendencies towards crack formation for increasing filmthickness as in YBCO13.3 Theory and Mechanism of High Tc Superconductivity3.1 Magnetic Resonance Theor
58、yIn conventional superconductors, the interaction that pairs the electrons to form the superconducting state is mediated by lattice vibrations-phonons. In HTS copper oxides, it is generally believed that magnetic excitations might play a fundamental role in the superconducting mechanism because superconductivity occurs when mobile”electrons” or ”holes”are doped into the anti-ferromagnetic parent compounds39. Indeed, a sharp magnetic excitation termed “resonance” has been observed by neutron scattering in a number of hole-doped materials. The resonance i
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