Continuously graded doped semiconducting polymers enhance thermoelectric cooling
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[1] Jaime Martín,et al. Reduction of the Lattice Thermal Conductivity of Polymer Semiconductors by Molecular Doping , 2020, ACS energy letters.
[2] W. Wong,et al. Emerging Organic Thermoelectric Applications from Conducting Metallopolymers , 2020 .
[3] Shrayesh N. Patel,et al. Leveraging Sequential Doping of Semiconducting Polymers to Enable Functionally Graded Materials for Organic Thermoelectrics , 2020 .
[4] Huanxin Chen,et al. Performance enhancement investigation of thermoelectric cooler with segmented configuration , 2020 .
[5] Davide Beretta,et al. Thermoelectrics: From history, a window to the future , 2019, Materials Science and Engineering: R: Reports.
[6] M. Dargusch,et al. Flexible Thermoelectric Materials and Generators: Challenges and Innovations , 2019, Advanced materials.
[7] V. Vijayakumar,et al. Bringing Conducting Polymers to High Order: Toward Conductivities beyond 105 S cm−1 and Thermoelectric Power Factors of 2 mW m−1 K−2 , 2019, Advanced Energy Materials.
[8] Wei Xu,et al. Advances in n‐Type Organic Thermoelectric Materials and Devices , 2019, Advanced Electronic Materials.
[9] A. Carvalho,et al. Effect of Alkyl Side Chain Length on Doping Kinetics, Thermopower, and Charge Transport Properties in Highly Oriented F4TCNQ-Doped PBTTT Films. , 2019, ACS applied materials & interfaces.
[10] Takao Mori,et al. Thermoelectric materials and applications for energy harvesting power generation , 2018, Science and technology of advanced materials.
[11] Daoben Zhu,et al. Exploring Peltier effect in organic thermoelectric films , 2018, Nature Communications.
[12] Syahida Suhaimi,et al. A review on fabrication methods for segmented thermoelectric structure , 2018 .
[13] Hsin Wang,et al. Performance of Functionally Graded Thermoelectric Materials and Devices: A Review , 2018, Journal of Electronic Materials.
[14] M. Chabinyc,et al. Thermoelectric Properties of Poly(3-hexylthiophene) (P3HT) Doped with 2,3,5,6-Tetrafluoro-7,7,8,8-tetracyanoquinodimethane (F4TCNQ) by Vapor-Phase Infiltration , 2018 .
[15] B. Iversen,et al. Functionally Graded (PbTe)1–x(SnTe)x Thermoelectrics , 2018 .
[16] C. Goupil,et al. Maximization of the thermoelectric cooling of graded Peltier by analytical heat equation resolution , 2017, 1801.05175.
[17] Marc A. Meyers,et al. Functional gradients and heterogeneities in biological materials: Design principles, functions, and bioinspired applications , 2017 .
[18] M. Chabinyc,et al. Morphology controls the thermoelectric power factor of a doped semiconducting polymer , 2017, Science Advances.
[19] Chen Ming,et al. Realizing a thermoelectric conversion efficiency of 12% in bismuth telluride/skutterudite segmented modules through full-parameter optimization and energy-loss minimized integration , 2017 .
[20] Rachel A. Segalman,et al. Organic thermoelectric materials for energy harvesting and temperature control , 2016, Nature Reviews Materials.
[21] Christian Müller,et al. Thermoelectric plastics: from design to synthesis, processing and structure–property relationships , 2016, Chemical Society reviews.
[22] W. Lau,et al. Functionally graded polymeric materials: A brif review of current fabrication methods and introduction of a novel fabrication method. , 2016, Materials science & engineering. C, Materials for biological applications.
[23] Ian E. Jacobs,et al. Comparison of solution-mixed and sequentially processed P3HT:F4TCNQ films: effect of doping-induced aggregation on film morphology , 2016 .
[24] N. Koch,et al. Molecular Electrical Doping of Organic Semiconductors: Fundamental Mechanisms and Emerging Dopant Design Rules. , 2016, Accounts of chemical research.
[25] S. Tolbert,et al. Overcoming Film Quality Issues for Conjugated Polymers Doped with F4TCNQ by Solution Sequential Processing: Hall Effect, Structural, and Optical Measurements. , 2015, The journal of physical chemistry letters.
[26] G. J. Snyder,et al. High performance p-type segmented leg of misfit-layered cobaltite and half-Heusler alloy , 2015 .
[27] Yaniv Gelbstein,et al. Functional Graded Germanium–Lead Chalcogenide‐Based Thermoelectric Module for Renewable Energy Applications , 2015 .
[28] Travis T. Wallace,et al. Functionally Graded Thermoelectric Materials with Arbitrary Property Gradations: A One-Dimensional Semianalytical Study , 2015, Journal of Electronic Materials.
[29] M. Toney,et al. Molecular Interactions and Ordering in Electrically Doped Polymers: Blends of PBTTT and F4TCNQ , 2014 .
[30] Daoben Zhu,et al. What To Expect from Conducting Polymers on the Playground of Thermoelectricity: Lessons Learned from Four High-Mobility Polymeric Semiconductors , 2014 .
[31] Cham Kim,et al. A study of the synthesis of bismuth tellurium selenide nanocompounds and procedures for improving their thermoelectric performance , 2011 .
[32] G. J. Snyder,et al. Complex thermoelectric materials. , 2008, Nature materials.
[33] Qiaoer Zhou,et al. Maximum cooling temperature and uniform efficiency criterion for inhomogeneous thermoelectric materials , 2007 .
[34] L. I. Anatychuk,et al. Theoretical evaluation of maximum temperature difference in segmented thermoelectric coolers , 2006 .
[35] Steven Walczak,et al. Optimization strategies for segmented Peltier coolers , 2006 .
[36] Wolfgang A. Kaysser,et al. Functionally graded materials for sensor and energy applications , 2003 .
[37] G. J. Snyder,et al. Thermoelectric efficiency and compatibility. , 2003, Physical review letters.
[38] Wolfgang Seifert,et al. One-dimensional Modelling of Thermoelectric Cooling , 2002 .
[39] David Michael Rowe,et al. High performance functionally graded and segmented Bi2Te3-based materials for thermoelectric power generation , 2002 .