TRANSPORT-PROPERTIES NEAR THE METAL-INSULATOR-TRANSITION IN HEAT-TREATED ACTIVATED CARBON-FIBERS

被引:48
作者
FUNG, AWP
DRESSELHAUS, MS
ENDO, M
机构
[1] MIT,DEPT PHYS,CAMBRIDGE,MA 02139
[2] SHINSHU UNIV,FAC ENGN,NAGANO,NAGANO,JAPAN
[3] SHINSHU UNIV,REG COOPERAT RES CTR,NAGANO,NAGANO,JAPAN
来源
PHYSICAL REVIEW B | 1993年 / 48卷 / 20期
关键词
D O I
10.1103/PhysRevB.48.14953
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The dc electrical conductivity (sigma) of activated carbon fibers (ACF's) heat treated at temperatures (T-HT) ranging from 300 to 2500 degrees C has been measured from 4.2 K to room temperature, and the magnetoresistance of these same fibers:has been measured for magnetic-field strengths up to 0.8 T at 4.2 K. With heat treatment below similar to 1200 degrees C, the heat-treated ACF's exhibit similar transport properties to those of the as-prepared ACF's with no heat treatment, in that the electrical conductivities for these ACF's all show the exp[-(T-0/T)(1/2)] temperature dependence, characteristic of granular metallic systems. A modified Coulomb-gap variable-range-hopping conduction model is proposed to explain this temperature dependence in ACF's. As T-HT reaches similar to 1200 degrees C, an electronic transition takes place, as evidenced by an increase in the absolute value of a at 300 K by almost two orders of magnitude, a drastic change in the temperature dependence of sigma, a reversal of the dependence of sigma on disorder, a sign change from positive to negative in the magnetoresistance, and the emergence of anisotropy in the magnetoresistance for the heat-treated ACF's. Most Of these changes in the transport properties are consistent with the metal-insulator transition observed in similarly disordered systems, signifying that nanoporous materials, with their porosity controllable by heat treatment, can be used to study electronic behavior in the strong localization regime as well as near the metal-insulator transition.
引用
收藏
页码:14953 / 14962
页数:10
相关论文
共 32 条
  • [1] ABELES B, 1975, ADV PHYS, V24, P407, DOI 10.1080/00018737500101431
  • [2] CONDUCTION IN ANTIGRANULOCYTES METALS WITH POTENTIAL DISORDER
    ADKINS, CJ
    [J]. JOURNAL OF PHYSICS C-SOLID STATE PHYSICS, 1987, 20 (02): : 235 - 244
  • [3] Bansal R.C., 1988, ACTIVE CARBON
  • [4] MAGNETOTRANSPORT AT THE METAL-INSULATOR-TRANSITION IN FLUORINE-INTERCALATED GRAPHITE FIBERS
    DIVITTORIO, SL
    DRESSELHAUS, MS
    ENDO, M
    NAKAJIMA, T
    [J]. PHYSICAL REVIEW B, 1991, 43 (15): : 12304 - 12315
  • [5] THE TRANSPORT-PROPERTIES OF ACTIVATED CARBON-FIBERS
    DIVITTORIO, SL
    DRESSELHAUS, MS
    ENDO, M
    ISSI, JP
    PIRAUX, L
    BAYOT, V
    [J]. JOURNAL OF MATERIALS RESEARCH, 1991, 6 (04) : 778 - 783
  • [6] ESR STUDY OF ACTIVATED CARBON-FIBERS - PRELIMINARY-RESULTS
    DIVITTORIO, SL
    NAKAYAMA, A
    ENOKI, T
    DRESSELHAUS, MS
    ENDO, M
    SHINDO, N
    [J]. JOURNAL OF MATERIALS RESEARCH, 1993, 8 (09) : 2282 - 2287
  • [7] Dresselhaus M. S., 1992, ION IMPLANTATION DIA
  • [8] Dresselhaus M.S., 1988, GRAPHITE FIBRES FILA, DOI [DOI 10.1007/978-3-642-83379-3, 10.1007/978-3-642-83379-3]
  • [9] LITHIUM SECONDARY BATTERY AND ELECTRIC DOUBLE-LAYER CAPACITOR USING CARBON-FIBERS ELECTRODE
    ENDO, M
    OKADA, Y
    NAKAMURA, H
    [J]. SYNTHETIC METALS, 1990, 34 (1-3) : 739 - 744
  • [10] RAMAN-SCATTERING AND ELECTRICAL-CONDUCTIVITY IN HIGHLY DISORDERED ACTIVATED CARBON-FIBERS
    FUNG, AWP
    RAO, AM
    KURIYAMA, K
    DRESSELHAUS, MS
    DRESSELHAUS, G
    ENDO, M
    SHINDO, N
    [J]. JOURNAL OF MATERIALS RESEARCH, 1993, 8 (03) : 489 - 500