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电子型掺杂高温超导体La_(2-x)Ce_xCuO_4飞秒时间分辨动力学研究 被引量:2

Femtosecond time-resolved dynamics in electron-doped high-T_c superconductor La_(2-x)Ce_xCuO_4
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摘要 利用飞秒时间分辨光抽运探测技术研究了电子型掺杂La2-xCexCuO4(LCCO)高温超导材料的准粒子超快动力学过程.得到低温(T<0.7Tc)、转变温度附近(0.7Tc≤T≤Tc)和高温(T>Tc)三个温区内的动力学行为.研究发现,低温时准粒子寿命随温度上升而下降,接近转变温度时出现反常的上升,正常态准粒子寿命受赝能隙影响明显大于金属中电声子的弛豫时间.还发现电子型掺杂LCCO光感生反射率变化ΔR/R动力学曲线存在皮秒量级的上升过程,它反映Cooper对被打散的时间较长,上升时间随温度增加而变短.采用Rothwarf和Taylar提出的理论模型对实验结果进行了分析. The quasiparticle dynamics in the electron-doped high-Tc superconductor La2- x Cex CuO4 (LCCO) was investigated by uhrafast time-resolved optical pump-probe technique. We present results in three temperature regions: namely the low temperature (T〈0.7Tc) region, that around Tc(0.7Tc≤ T≤ Tc) and the high temperature (T 〉 Tc) region. In general, there was a slowdown of the relaxation as the temperature decreases. However, the quasiparticle lifetime was found to exhibit a quasi-divergence as the temperature approached Te from below. The relaxation time in normal state was much longer than what was expected for metallic relaxation, indicating the presence of a T-independent pseudogap. We have also observed picosecond rise component of photoinduced change in reflectivity AR/R in the electron-doped LCCO, which is attributed to the Cooper pairbreaking dynamics. The rise time became shorter as the temperature increased. The experimental results are analyzed by Rothwarf-Taylor model.
出处 《物理学报》 SCIE EI CAS CSCD 北大核心 2008年第4期2543-2547,共5页 Acta Physica Sinica
基金 国家自然科学基金(批准号:10574155)资助的课题~~
关键词 电子型掺杂高温超导体 飞秒时间分辨 准粒子 声子瓶颈 electron-doped high- Tc superconductor, femtosecond time-resolved, quasiparticle, phonon bottleneck
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参考文献28

  • 1Han S G, Vardeny Z V, Wong K S, Symko O G 1990 Phys. Rev. Lett. 65 2708
  • 2Gay P, Smith D C, Stevens C J, Chen C, Yang G, Abell S J, WangDZ, Wang J H, Ren Z F, Ryan J F 1999 J. Low Temp. Phys. 117 1025
  • 3Kabanov V V, Derasar J, Podobnik B, Mihailovic D 1999 Phys. Rev. B 59 1497
  • 4Demsar J, Hudej R, Karpinski J, Kabanov V V, Mihailovic D 2001 Phys. Rev. B 63 054519
  • 5Serge G P, Gedik N, Orenstein J, Bonn D A, Liang R X, Hardy W N 2002 Phys. Rev. Lett. 88 137001
  • 6Demsar J, Averitt R D, Taylor A J, Kabanov V V, Kang W N, Kim H J, Choi E M, Lee S I 2003 Phys. Rev. Lett. 91 267002
  • 7Kusar P, Demsar J, Mihailovic D, Sugai S 2005 Phys. Rev. B 72 014544
  • 8Luo C W, Shih P T, Chen Y J, Chen M H, Wu K H, Juang J Y, Lin J Y, Uen T M, Gou Y S 2005 Phys. Rev. B 72 092506
  • 9LongY B, Zhao L, Zhao B R, Qiu X G, Zhang C Y, Fu P M, Wang L, Zhang Z G, Zhao S P, Yang Q S, Wang G P 2006 Physica C 436 59
  • 10Demsar J, Averitt R D, Ahn K H, Graf M J, Trugman S A, Kabanov V V, Sarrao J L, Taylor A J 2003 Phys. Rev. Lett. 91 027401

二级参考文献36

  • 1孙丰伟,邓莉,寿倩,刘鲁宁,文锦辉,赖天树,林位株.量子阱中电子自旋注入及弛豫的飞秒光谱研究[J].物理学报,2004,53(9):3196-3199. 被引量:10
  • 2徐耿钊,梁琥,白永强,刘纪美,朱星.低温近场光学显微术对InGaN/GaN多量子阱电致发光温度特性的研究[J].物理学报,2005,54(11):5344-5349. 被引量:10
  • 3Wolf S A, Awshalom D D, Buhrman R A, Daughton J M, Molnar S Von, Roukes M L, Chtchelkanova A Y, Treger D M 2001 Science 294 1488
  • 4Sarma S D, Fabian J, Hu X D, Zutic 1 2001 Solid State Commu.119 207
  • 5Pershin Y V, Privman V 2004 Phys. Rev. B 69 073310
  • 6Song P H, Kim K W 2002 Phys. Rev. B 66 035207
  • 7Sandhu J S, Heberle A P, Baumberg J J, Cleaver J R A 2001 Phys. Rev. Lett. 86 2150
  • 8Fabian J, Sarma S D 1999 J. Vac. Sci. Technol. B 17 1708
  • 9Tackeuchi A, Wada O 1997 Appl. Phys. Lett. 70 1131
  • 10Lai T S, Liu L N, Shou Q, Lei L, Lin W Z 2004 Appl. Phys.Lett. 85 4040

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