Dynamics of nonequilibrium quasiparticles in narrow-gap superconducting tunnel junctions

被引:14
作者
Kozorezov, A. G. [1 ]
Hijmering, R. A. [2 ]
Brammertz, G. [2 ]
Wigmore, J. K. [1 ]
Peacock, A. [2 ]
Martin, D. [2 ]
Verhoeve, P. [2 ]
Golubov, A. A. [3 ]
Rogalla, H. [3 ]
机构
[1] Univ Lancaster, Dept Phys, Lancaster LA1 4YB, England
[2] European Space Agcy, Sci Payloads & Adv Concepts Off, ESTEC, SCI A, NL-2200 AG Noordwijk, Netherlands
[3] Univ Twente, Dept Appl Phys, NL-7500 AE Enschede, Netherlands
来源
PHYSICAL REVIEW B | 2008年 / 77卷 / 01期
关键词
D O I
10.1103/PhysRevB.77.014501
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The latest generation of high quality, narrow gap, superconducting tunnel junctions (STJs) exhibits a steady-state and time-dependent behavior which cannot be described satisfactorily by previous treatments of nonequilibrium quasiparticle (qp) dynamics. These effects are particularly evident in experiments using STJs as detectors of photons, over the range from near infrared to x ray. In this paper, we present a detailed theoretical analysis of the spectral and temporal evolution of the nonequilibrium qp and phonon distributions in such STJs excited by single photons, over a wide range of excitation energy, bias voltage, and temperature. By solving the coupled set of kinetic equations describing the interacting excitations, we show that the nonequilibrium qp distribution created by the initial photoabsorption does not decay directly back to the initial undisturbed state in thermal equilibrium. Instead, it undergoes a rapid adiabatic relaxation to a long-lived, excited state, the spectral distribution of which is nonthermal, maintained by a balance between qp creation, recombination, and trapping. The model is able to describe successfully photoabsorption data taken on several different aluminum STJs, using a single set of parameters. Of particular note is the conclusion that the local traps responsible for qp loss are situated specifically in the region of Nb contacts.
引用
收藏
页数:10
相关论文
共 33 条
[1]   Development of superconducting tunnel junction detectors for high-resolution X-ray spectroscopy [J].
Angloher, G ;
Beckhoff, B ;
Bühler, M ;
von Feilitzsch, F ;
Hertrich, T ;
Hettl, P ;
Höhne, J ;
Huber, M ;
Jochum, J ;
Mössbauer, RL ;
Schnagl, J ;
Scholze, F ;
Ulm, G .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2000, 444 (1-2) :214-219
[2]   Energy-dependent kinetic model of photon absorption by superconducting tunnel junctions [J].
Brammertz, G ;
Kozorezov, AG ;
Wigmore, JK ;
den Hartog, R ;
Verhoeve, P ;
Martin, D ;
Peacock, A ;
Golubov, AA ;
Rogalla, H .
JOURNAL OF APPLIED PHYSICS, 2003, 94 (09) :5854-5865
[3]  
BRAMMERTZ G, 2003, THESIS U TWENTE, P64438
[4]  
CHANG JJ, 1986, NONEQUILIBRIUM SUPER, P459
[5]   Quasiparticle diffusion and the energy resolution of superconducting tunneling junctions as photon detectors. II. Experiment [J].
den Hartog, R ;
Kozorezov, AG ;
Wigmore, JK ;
Martin, D ;
Verhoeve, P ;
Peacock, A ;
Poelaert, A ;
Brammertz, G .
PHYSICAL REVIEW B, 2002, 66 (09) :1-14
[6]   Distributed Read-Out Imaging Devices for X-ray imaging spectroscopy [J].
den Hartog, R ;
Martin, D ;
Kozorezov, A ;
Verhoeve, P ;
Rando, N ;
Peacock, A ;
Brammertz, G ;
Krumrey, M ;
Goldie, DJ ;
Venn, R .
X-RAY OPTICS, INSTRUMENTS, AND MISSIONS III, 2000, 4012 :237-248
[7]  
Elesin V. F., 1981, Soviet Physics - Uspekhi, V24, P116, DOI 10.1070/PU1981v024n02ABEH004631
[8]   Lattice dynamics of a disordered solid-solid interface [J].
Fagas, G ;
Kozorezov, AG ;
Lambert, CJ ;
Wigmore, JK ;
Peacock, A ;
Poelaert, A ;
den Hartog, R .
PHYSICAL REVIEW B, 1999, 60 (09) :6459-6464
[9]   STATISTICAL NOISE DUE TO TUNNELING IN SUPERCONDUCTING TUNNEL JUNCTION DETECTORS [J].
GOLDIE, DJ ;
BRINK, PL ;
PATEL, C ;
BOOTH, NE ;
SALMON, GL .
APPLIED PHYSICS LETTERS, 1994, 64 (23) :3169-3171
[10]   QUASI-PARTICLE LIFETIMES AND TUNNELING TIMES IN A SUPERCONDUCTOR-INSULATOR-SUPERCONDUCTOR TUNNEL JUNCTION WITH SPATIALLY INHOMOGENEOUS ELECTRODES [J].
GOLUBOV, AA ;
HOUWMAN, EP ;
GIJSBERTSEN, JG ;
FLOKSTRA, J ;
ROGALLA, H ;
LEGRAND, JB ;
DEKORTE, PAJ .
PHYSICAL REVIEW B, 1994, 49 (18) :12953-12968