Harmonised techniqueNon-exclusive mapping

Thermal transport measurements

Thermal conductivity and diffusivity measurements, including TDTR and laser-flash methods.

10primary papers
15mapped measurements
66linked results
11raw method labels
The harmonised label does not replace the method

Every source method stays verbatim. Subtypes retain distinctions such as ATR versus transmission IR, powder versus single-crystal diffraction, and two- versus four-contact transport.

Measurement-family coverage

The same technique may serve transport, electrochemistry, sensing or another scientific purpose.

Mapped measurements

Filter source method wording, sample context and scientific purpose.

15 measurements

ThermoelectricThermal conductivity

Steady-state thermal conductivity measurement.

2025 · Uninterrupted π-d Conjugated Three-Dimensional Conductive Metal-Organic Framework

Rectangular Ni3HBC pellet for electrical and thermal transport · Pellet · High-vacuum cryostat; heat flow measured with calibrated Marlow NL1010T-01AC thermoelectric devices; temperature gradient from ohmic heater.

ThermoelectricThermal conductivity

Thermal conductivity measurement

2020 · Nanorods of a novel highly conductive 2D metal-organic framework based on perthiolated coronene for thermoelectric conversion

Ni-PTC columned pellet for thermal conductivity measurements · Pellet · TCI Thermal Conductivity Analyzer; columned pellets under 25 MPa; environment controlled by CTI Cryogenics refrigerator.

ThermoelectricThermal conductivity

suspended in-plane thermal conductivity device

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

suspended Cu-BHT thermal-conductivity device · Thin Film · DC current through one metal lead creates DeltaT; heat Q calculated from sensor-lead resistance change; kappa = (Q/DeltaT) x l/(wd).

ThermoelectricThermal conductivity

Steady-state thermal conductivity measurement

2017 · A Microporous and Naturally Nanostructured Thermoelectric Metal-Organic Framework with Ultralow Thermal Conductivity

pressed pellet of Ni3(HITP)2 · Pellet · Same steady-state assembly as Seebeck measurement; thermal conductivity extracted from slope of power-versus-temperature curves; values averaged over multiple sweeps.

ThermoelectricTDTR

Time-dependent thermoreflectance (TDTR)

2015 · Thin film thermoelectric metal-organic framework with high seebeck coefficient and low thermal conductivity

TCNQ@Cu3(BTC)2 TDTR film on p-Si/SiO2 · Thin Film · TDTR with 80 MHz Ti:Sapphire oscillator, pump modulation at 1.034 MHz and 8.8 MHz; Al transducer dots; model accounts for Al, TCNQ@Cu3(BTC)2, SiO2 and Si.

ThermoelectricThermal diffusivity

Laser flash thermal analysis using Cowan 2-layer model

2012 · High performance metal–organic-framework coatings obtained via thermal gradient synthesis

HKUST-1 coating on 5 cm x 5 cm copper sheet · Thin Film · Netzsch Microflash LFA 457 under vacuum on 10 mm x 10 mm samples; graphite coated both sides and dehumidified at 120 deg C; three shots per temperature, arithmetic means; Cu substrate properties from Netzsch database and coating heat capacity from Figure S6 regression.

Raw method vocabulary

These are the exact source-preserving method strings consolidated by this technique group.

Show 11 reported method labels
Raw method labelMapped measurements
Temperature-dependent conductivity, Seebeck coefficient, thermal conductivity and calculated ZT3
Electrical conductivity, Seebeck coefficient, Raman thermometry thermal conductivity, power factor and zT3
Steady-state thermal conductivity measurement.1
Steady-state thermal conductivity measurement1
Thermal conductivity measurement1
Figure of merit ZT calculated from Seebeck coefficient, conductivity and thermal conductivity1
suspended in-plane thermal conductivity device1
electrical conductivity, Seebeck coefficient, power factor, thermal conductivity, and ZT1
Laser flash thermal analysis using Cowan 2-layer model1
Calculated Lorenz number from Landauer sigma and kappa_e at 300 K, plus ZT estimate using peak power factor and lattice thermal conductivity.1
Time-dependent thermoreflectance (TDTR)1