- Research Article
1
- 10.1007/s10765-022-03152-4
Development and Characterization of SiC–Mo High-Temperature Multi-layer Laser Flash Artifacts with Partial Debonding
- Jan 26, 2023
- International Journal of Thermophysics
- Ateeb Farooqui + 7 more +7
Publications from 2021 to 2026
Showing 10 of 31 papers
Development and Characterization of SiC–Mo High-Temperature Multi-layer Laser Flash Artifacts with Partial Debonding
The effect of conductive network on positive temperature coefficient behaviour in conductive polymer composites
The Contribution of Electrical Conductivity, Dielectric Permittivity and Domain Switching in Ferroelectric Hysteresis Loops
Fatigue of carbon cord-rubber composites: Effect of frequency, [formula omitted] ratio and life prediction using constant life models
Effect of the Processing Route on the Thermoelectric Performance of Nanostructured CuPb18SbTe20.
The quaternary AgPb18SbTe20 compound (abbreviated as LAST) is a prominent thermoelectric material with good performance. Endotaxially embedded nanoscale Ag-rich precipitates contribute significantly to decreased lattice thermal conductivity (κlatt) in LAST alloys. In this work, Ag in LAST alloys was completely replaced by the more economically available Cu. Herein, we conscientiously investigated the different routes of synthesizing CuPb18SbTe20 after vacuum-sealed-tube melt processing, including (i) slow cooling of the melt, (ii) quenching and annealing, and consolidation by (iii) spark plasma sintering (SPS) and also (iv) by the state-of-the-art flash SPS. Irrespective of the method of synthesis, the electrical (σ) and thermal (κtot) conductivities of the CuPb18SbTe20 samples were akin to those of LAST alloys. Both the flash-SPSed and slow-cooled CuPb18SbTe20 samples with nanoscale dislocations and Cu-rich nanoprecipitates exhibited an ultralow κlatt ∼ 0.58 W/m·K at 723 K, comparable with that of its Ag counterpart, regardless of the differences in the size of the precipitates, type of precipitate-matrix interfaces, and other nanoscopic architectures. The sample processed by flash SPS manifested higher figure of merit ( zT ∼ 0.9 at 723 K) because of better optimization and a trade-off between the transport properties by decreasing the carrier concentration and κlatt without degrading the carrier mobility. In spite of their comparable σ and κtot, zT of the Cu samples is low compared to that of the Ag samples because of their contrasting thermopower values. First-principles calculations attribute this variation in the Seebeck coefficient to dwindling of the energy gap (from 0.1 to 0.02 eV) between the valence and conduction bands in MPb18SbTe20 (M = Cu or Ag) when Cu replaces Ag.
Read moreMagnéli phase titanium suboxides by Flash Spark Plasma Sintering
A Flash Spark Plasma Sintering (FSPS) technique was used to fully densify Magnéli phase titanium suboxides (95%TD) in 9s. A modified FSPS setup contributed to produce homogeneous and dense microstructures, thus avoiding undesired residual porosity at the contact surfaces between samples and electrodes. FSPSed samples retained the original phases (Ti4O7, Ti5O9 and Ti6O11) of the starting powder, whereas Ti4O7 disappeared in those samples densified using Conventional Spark Plasma Sintering (CSPS). Compared to CSPSed samples, FSPSed ones possessed higher room-temperature electrical conductivity (1558S·cm−1). FSPSed sample exhibited good thermoelectric properties with a figure of merit (ZT) of 0.085 at 1073K.
Read moreUniversal Control on Pyroresistive Behavior of Flexible Self‐Regulating Heating Devices
Abstract Smart heating devices with reliable self‐regulating performances and high efficiency, combined with additional properties like mechanical flexibility, are of particular interest in healthcare, soft robotics, and smart buildings. Unfortunately, the development of smart heaters necessitates managing normally conflicting requirements such as good self‐regulating capabilities and efficient Joule heating performances. Here, a simple and universal materials design strategy based on a series connection of different conductive polymer composites (CPC) is shown to provide unique control over the pyroresistive properties. Hooke's and Kirchhoff's laws of electrical circuits can simply predict the overall pyroresistive behavior of devices connected in series and/or parallel configurations, hence providing design guidelines. An efficient and mechanically flexible Joule heating device is hence designed and created. The heater is characterized by a zero temperature coefficient of resistance below the self‐regulating temperature, immediately followed by a large and sharp positive temperature coefficient (PTC) behavior with a PTC intensity of around 106. Flexibility and toughness is provided by the selected elastomeric thermoplastic polyurethane (TPU) matrix as well as the device design. The universality of the approach is demonstrated by using different polymer matrices and conductive fillers for which repeatable results are consistently obtained.
Read moreCeramic Matrix Nanocomposites
Surface free energy analysis of electrospun fibers based on Rayleigh-Plateau/Weber instabilities
Filtration effects of graphene nanoplatelets in resin infusion processes: Problems and possible solutions