Quantitative thermal measurement by the use of scanning thermal microscope and resistive thermal probes

被引:18
作者
Bodzenta, Jerzy [1 ]
Kazmierczak-Balata, Anna [1 ]
Harris, Kurt [2 ]
机构
[1] Silesian Tech Univ, Inst Phys, Konarskiego 22B, PL-44100 Gliwice, Poland
[2] Flibe Energy Inc, 7800 Madison Blvd, Huntsville, AL 35806 USA
关键词
PROPERTY IMAGING TECHNIQUE; HEAT-TRANSFER; THIN-FILMS; 2-OMEGA METHOD; CONDUCTIVITY; THERMOMETRY; CANTILEVER; RESISTANCE; TRANSPORT; SILICON;
D O I
10.1063/1.5125062
中图分类号
O59 [应用物理学];
学科分类号
摘要
Scanning thermal microscopy (SThM) is the only method for thermal measurements providing spatial resolution in the nanometer range. The method combines the topographical imaging of atomic force microscopy (AFM) with the thermal characterization of samples by the use of specially designed AFM probes having a temperature sensor near the apex. Measurements can be carried out in two modes: the temperature contrast (or passive) mode and the conductance contrast (or active) mode. In the first mode, the probe is not heated and the temperature distribution on the sample surface is measured. In the second mode, there are no heat sources in the sample and the probe is heated. The probe temperature depends on the thermal conductance for the heat exchange between the probe and the sample. This thermal conductance depends on the sample thermal conductivity and probe-sample interfacial thermal resistance. If the latter is constant, the distribution of the thermal conductivity on the sample surface can be obtained. The principle of qualitative SThM is quite simple. However, quantitative measurements require rigorous analysis of temperature distribution and heat fluxes in the probe-sample system. This paper provides basic information about SThM starting from first principles, through instrumentation, characterization of probes used for measurements, general theory of the temperature, and the thermal conductivity measurements, to a few examples of practical applications of this method. Finally, perspectives and challenges for SThM based measurements are discussed. Published under license by AIP Publishing.
引用
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页数:20
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共 116 条
[31]   Heat transport in silicon from first-principles calculations [J].
Esfarjani, Keivan ;
Chen, Gang ;
Stokes, Harold T. .
PHYSICAL REVIEW B, 2011, 84 (08)
[32]   Quantification of probe-sample interactions of a scanning thermal microscope using a nanofabricated calibration sample having programmable size [J].
Ge, Yunfei ;
Zhang, Yuan ;
Booth, Jamie A. ;
Weaver, Jonathan M. R. ;
Dobson, Phillip S. .
NANOTECHNOLOGY, 2016, 27 (32)
[33]   Scanning thermal microscopy: A review [J].
Gomes, Severine ;
Assy, Ali ;
Chapuis, Pierre-Olivier .
PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2015, 212 (03) :477-494
[34]   Characterization of the thermal conductivity of insulating thin films by scanning thermal microscopy [J].
Gomes, Severine ;
Newby, Pascal ;
Canut, Bruno ;
Termentzidis, Konstantinos ;
Marty, Olivier ;
Frechette, Luc ;
Chantrenne, Patrice ;
Aimez, Vincent ;
Bluet, Jean-Marie ;
Lysenko, Vladimir .
MICROELECTRONICS JOURNAL, 2013, 44 (11) :1029-1034
[35]   Multifrequential AC modeling of the SThM probe behavior [J].
Grossel, Philippe ;
Raphaeel, Olivier ;
Depasse, Francoise ;
Duvaut, Thierry ;
Trannoy, Nathalie .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2007, 46 (10) :980-988
[36]   Thermal microscopy of electronic materials [J].
Heiderhoff, Ralf ;
Makris, Andreas ;
Riedl, Thomas .
MATERIALS SCIENCE IN SEMICONDUCTOR PROCESSING, 2016, 43 :163-176
[37]   Monolithic gallium arsenide cantilever for scanning near-field microscopy [J].
Heisig, S ;
Danzebrink, HU ;
Leyk, A ;
Mertin, W ;
Münster, S ;
Oesterschulze, E .
ULTRAMICROSCOPY, 1998, 71 (1-4) :99-105
[38]   Spectral phonon transport properties of silicon based on molecular dynamics Simulations and lattice dynamics [J].
Henry, Asegun S. ;
Chen, Gang .
JOURNAL OF COMPUTATIONAL AND THEORETICAL NANOSCIENCE, 2008, 5 (02) :141-152
[39]   Carbon nanotube thermal probe for quantitative temperature sensing [J].
Hirotani, Jun ;
Amano, Juo ;
Ikuta, Tatsuya ;
Nishiyama, Takashi ;
Takahashi, Koji .
SENSORS AND ACTUATORS A-PHYSICAL, 2013, 199 :1-8
[40]   Non-diffusive thermal transport in GaAs at micron length scales [J].
Johnson, Jeremy A. ;
Eliason, Jeffrey K. ;
Maznev, Alexei A. ;
Luo, Tengfei ;
Nelson, Keith A. .
JOURNAL OF APPLIED PHYSICS, 2015, 118 (15)