High performance solid-state thermoelectric energy conversion via inorganic metal halide perovskites under tailored mechanical deformation

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Frontiers in Energy ›› 2022, Vol. 16 ›› Issue (4) : 581-594. DOI: 10.1007/s11708-022-0831-y

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High performance solid-state thermoelectric energy conversion via inorganic metal halide perovskites under tailored mechanical deformation

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Abstract

Solid-state thermoelectric energy conversion devices attract broad research interests because of their great promises in waste heat recycling, space power generation, deep water power generation, and temperature control, but the search for essential thermoelectric materials with high performance still remains a great challenge. As an emerging low cost, solution-processed thermoelectric material, inorganic metal halide perovskites CsPb(I1–xBrx)3 under mechanical deformation is systematically investigated using the first-principle calculations and the Boltzmann transport theory. It is demonstrated that halogen mixing and mechanical deformation are efficient methods to tailor electronic structures and charge transport properties in CsPb(I1–xBrx)3 synergistically. Halogen mixing leads to band splitting and anisotropic charge transport due to symmetry-breaking-induced intrinsic strains. Such band splitting reconstructs the band edge and can decrease the charge carrier effective mass, leading to excellent charge transport properties. Mechanical deformation can further push the orbital energies apart from each other in a more controllable manner, surpassing the impact from intrinsic strains. Both anisotropic charge transport properties andZT values are sensitive to the direction and magnitude of strain, showing a wide range of variation from 20% to 400% (with a ZT value of up to 1.85) compared with unstrained cases. The power generation efficiency of the thermoelectric device can reach as high as approximately 12% using mixed halide perovskites under tailored mechanical deformation when the heat-source is at 500 K and the cold side is maintained at 300 K, surpassing the performance of many existing bulk thermoelectric materials.

Keywords

inorganic metal halide perovskites / mechanical deformation / thermoelectrics / first-principle calculations / Boltzmann transport theory

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. . Frontiers in Energy. 2022, 16(4): 581-594 https://doi.org/10.1007/s11708-022-0831-y

参考文献

[1]
WangH, HeJ. China’s pre-2020 CO2 emission reduction potential and its influence. Frontiers in Energy, 2019, 13( 3): 571– 578
CrossRef ADS Google scholar
[2]
SemieniukG, TaylorL, RezaiA. . Plausible energy demand patterns in a growing global economy with climate policy. Nature Climate Change, 2021, 11( 4): 313– 318
CrossRef ADS Google scholar
[3]
PathakL, ShahK. Renewable energy resources, policies and gaps in BRICS countries and the global impact. Frontiers in Energy, 2019, 13( 3): 506– 521
CrossRef ADS Google scholar
[4]
ZhangX, GengY, TongY W. . Trends and driving forces of low-carbon energy technology innovation in China’s industrial sectors from 1998 to 2017: from a regional perspective. Frontiers in Energy, 2021, 15( 2): 473– 486
CrossRef ADS Google scholar
[5]
GarofaloE, BevioneM, CecchiniL. . Waste heat to power: technologies, current applications, and future potential. Energy Technology (Weinheim), 2020, 8( 11): 2000413
CrossRef ADS Google scholar
[6]
ZhaoC, ZhangZ, ZhangX. Special issue: nanotechnology in energy. Frontiers in Energy, 2018, 12( 1): 1– 4
CrossRef ADS Google scholar
[7]
LiuJ, GuoZ. Unconventional energy: seeking the ways to innovate energy science and technology. Frontiers in Energy, 2018, 12( 2): 195– 197
CrossRef ADS Google scholar
[8]
LiuZ, YuanS, YuanY. . A thermoelectric generator and water-cooling assisted high conversion efficiency polycrystalline silicon photovoltaic system. Frontiers in Energy, 2021, 15( 2): 358– 366
CrossRef ADS Google scholar
[9]
TwahaS, ZhuJ, YanY. . A comprehensive review of thermoelectric technology: materials, applications, modelling and performance improvement. Renewable & Sustainable Energy Reviews, 2016, 65 : 698– 726
CrossRef ADS Google scholar
[10]
JiaD, LiuJ. Human power-based energy harvesting strategies for mobile electronic devices. Frontiers of Energy and Power Engineering in China, 2009, 3( 1): 27– 46
CrossRef ADS Google scholar
[11]
LinS, ChenC, ZhaoL. . Molecular insights into water vapor adsorption and interfacial moisture stability of hybrid perovskites for robust optoelectronics. International Journal of Heat and Mass Transfer, 2021, 175 : 121334
CrossRef ADS Google scholar
[12]
HeY, GalliG. Perovskites for solar thermoelectric applications: a first principle study of CH3NH3AI3 (A = Pb and Sn). Chemistry of Materials, 2014, 26( 18): 5394– 5400
CrossRef ADS Google scholar
[13]
TangG, GhosezP, HongJ. Band-edge orbital engineering of perovskite semiconductors for optoelectronic applications. Journal of Physical Chemistry Letters, 2021, 12( 17): 4227– 4239
CrossRef ADS Google scholar
[14]
HuS, RenZ, DjurišićA B. . Metal halide perovskites as emerging thermoelectric materials. ACS Energy Letters, 2021, 6( 11): 3882– 3905
CrossRef ADS Google scholar
[15]
EperonG E, PaternòG M, SuttonR J. . Inorganic caesium lead iodide perovskite solar cells. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2015, 3( 39): 19688– 19695
CrossRef ADS Google scholar
[16]
KulbakM, GuptaS, KedemN. . Cesium enhances long-term stability of lead bromide perovskite-based solar cells. Journal of Physical Chemistry Letters, 2016, 7( 1): 167– 172
CrossRef ADS Google scholar
[17]
WangZ, ShiZ, LiT. . Stability of perovskite solar cells: a prospective on the substitution of the A cation and X anion. Angewandte Chemie International Edition, 2017, 56( 5): 1190– 1212
CrossRef ADS Google scholar
[18]
WangX, LingY, LianX. . Suppressed phase separation of mixed-halide perovskites confined in endotaxial matrices. Nature Communications, 2019, 10( 1): 695
CrossRef ADS Google scholar
[19]
YuH, SunQ, ZhangT. . Is the strain responsible to instability of inorganic perovskites and their photovoltaic devices? Materials Today. Energy, 2021, 19 : 100601
CrossRef ADS Google scholar
[20]
MoloneyE G, YedduV, SaidaminovM I. Strain engineering in halide perovskites. ACS Materials Letters, 2020, 2( 11): 1495– 1508
CrossRef ADS Google scholar
[21]
LiZ, QinY, DongL. . Elastic and electronic origins of strain stabilized photovoltaic gamma-CsPbI3. Physical Chemistry Chemical Physics, 2020, 22( 22): 12706– 12712
CrossRef ADS Google scholar
[22]
YalamehaS, SaeidiP, NourbakhshZ. . Insight into the topological phase and elastic properties of halide perovskites CsSnX3 (X  = l, Br, Cl) under hydrostatic pressures. Journal of Applied Physics, 2020, 127( 8): 085102
CrossRef ADS Google scholar
[23]
ZitouniH TahiriN El BounaguiO, . How the strain effects decreases the band gap energy in the CsPb X3 perovskite compounds ? Phase Transitions, 2020, 93( 5): 455– 469
[24]
RahmanM A, GiriA. Uniquely anisotropic mechanical and thermal responses of hybrid organic-inorganic perovskites under uniaxial strain. Journal of Chemical Physics, 2021, 155( 12): 124703
CrossRef ADS Google scholar
[25]
DingG, GaoG Y, YuL. . Thermoelectric properties of half-Heusler topological insulators MPtBi (M = Sc, Y, La) induced by strain. Journal of Applied Physics, 2016, 119( 2): 025105
CrossRef ADS Google scholar
[26]
LuoX, SullivanM B, QuekS Y. First-principles investigations of the atomic, electronic, and thermoelectric properties of equilibrium and strained Bi2Se3 and Bi2Te3 including van der Waals interactions. Physical Review B: Condensed Matter and Materials Physics, 2012, 86( 18): 184111
CrossRef ADS Google scholar
[27]
PalK, AnandS, WaghmareU V. Thermoelectric properties of materials with nontrivial electronic topology. Journal of Materials Chemistry. C, Materials for Optical and Electronic Devices, 2015, 3( 46): 12130– 12139
CrossRef ADS Google scholar
[28]
ZouC, LeiC, ZouD. . Uniaxial tensile strain induced the enhancement of thermoelectric properties in n-type BiCuOCh (Ch = Se, S): a first principles study. Materials (Basel), 2020, 13( 7): 1755
CrossRef ADS Google scholar
[29]
BhaskarL K, KumarG, SrinivasanN. . Design and development of a miniaturized multiaxial test setup for in situ X-ray diffraction experiments. Review of Scientific Instruments, 2021, 92( 1): 015116
CrossRef ADS Google scholar
[30]
KleberX, RouxP, MorinM. Sensitivity of the thermoelectric power of metallic materials to an elastic uniaxial strain. Philosophical Magazine Letters, 2009, 89( 9): 565– 572
CrossRef ADS Google scholar
[31]
HaqueM A, KeeS, VillalvaD R. . Halide perovskites: thermal transport and prospects for thermoelectricity. Advanced Science (Weinheim, Baden-Wurttemberg, Germany), 2020, 7( 10): 1903389
CrossRef ADS Google scholar
[32]
NayakP K, SendnerM, WengerB. . Impact of Bi3+ heterovalent doping in organic-inorganic metal halide perovskite crystals. Journal of the American Chemical Society, 2018, 140( 2): 574– 577
CrossRef ADS Google scholar
[33]
YanL, WangM, ZhaiC. . Symmetry-breaking induced anisotropic carrier transport and remarkable thermoelectric performance in mixed halide perovskites CsPb(I1–xBrx)3. ACS Applied Materials & Interfaces, 2020, 12( 36): 40453– 40464
CrossRef ADS Google scholar
[34]
PerdewJ P, BurkeK, ErnzerhofM. Generalized gradient approximation made simple. Physical Review Letters, 1996, 77( 18): 3865– 3868
CrossRef ADS Google scholar
[35]
TorrentM, JolletF, BottinF. . Implementation of the projector augmented-wave method in the ABINIT code: application to the study of iron under pressure. Computational Materials Science, 2008, 42( 2): 337– 351
CrossRef ADS Google scholar
[36]
KresseG, FurthmüllerJ. Efficient iterative schemes for Ab initio total-energy calculations using a plane-wave basis set. Physical Review B: Condensed Matter, 1996, 54( 16): 11169– 11186
CrossRef ADS Google scholar
[37]
PulayP. Convergence acceleration of iterative sequences: the case of SCF iteration. Chemical Physics Letters, 1980, 73( 2): 393– 398
CrossRef ADS Google scholar
[38]
FiorentiniV V, BaldereschiA. Dielectric scaling of the self-energy scissor operator in semiconductors and insulators. Physical Review B: Condensed Matter, 1995, 51( 23): 17196– 17198
CrossRef ADS Google scholar
[39]
YinW J, YanY, WeiS H. Anomalous alloy properties in mixed halide perovskites. Journal of Physical Chemistry Letters, 2014, 5( 21): 3625– 3631
CrossRef ADS Google scholar
[40]
StoumposC C, MalliakasC D, PetersJ A. . Crystal growth of the perovskite semiconductor CsPbBr3: a new material for high-energy radiation detection. Crystal Growth & Design, 2013, 13( 7): 2722– 2727
CrossRef ADS Google scholar
[41]
MadsenG K H, SinghD J. BoltzTraP. A code for calculating band-structure dependent quantities. Computer Physics Communications, 2006, 175( 1): 67– 71
CrossRef ADS Google scholar
[42]
XiJ, LongM, TangL. . First-principles prediction of charge mobility in carbon and organic nanomaterials. Nanoscale, 2012, 4( 15): 4348– 4369
CrossRef ADS Google scholar
[43]
TangL, LongM, WangD. . The role of acoustic phonon scattering in charge transport in organic semiconductors: a first-principles deformation-potential study. Science in China. Series B, Chemistry, 2009, 52( 10): 1646– 1652
CrossRef ADS Google scholar
[44]
WangD, ShiW, ChenJ. . Modeling thermoelectric transport in organic materials. Physical Chemistry Chemical Physics, 2012, 14( 48): 16505– 16520
CrossRef ADS Google scholar
[45]
WangD, TangL, LongM. . First-principles investigation of organic semiconductors for thermoelectric applications. Journal of Chemical Physics, 2009, 131( 22): 224704
CrossRef ADS Google scholar
[46]
LuY B, KongX, ChenX. . Piezoelectric scattering limited mobility of hybrid organic-inorganic perovskites CH3NH3PbI3. Scientific Reports, 2017, 7( 1): 41860
CrossRef ADS Google scholar
[47]
FröhlichH. Electrons in lattice fields. Advances in Physics, 1954, 3( 11): 325– 361
CrossRef ADS Google scholar
[48]
ChattopadhyayD, QueisserH J. Electron scattering by ionized impurities in semiconductors. Reviews of Modern Physics, 1981, 53( 4): 745– 768
CrossRef ADS Google scholar
[49]
YuJ, WangM, LinS. Probing the soft and nanoductile mechanical nature of single and polycrystalline organic–inorganic hybrid perovskites for flexible functional devices. ACS Nano, 2016, 10( 12): 11044– 11057
CrossRef ADS Google scholar
[50]
KlemensP G. Thermal resistance due to point defects at high temperatures. Physical Review, 1960, 119( 2): 507– 509
CrossRef ADS Google scholar
[51]
WangH, WangJ, CaoX. . Thermoelectric alloys between PbSe and PbS with effective thermal conductivity reduction and high figure of merit. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2014, 2( 9): 3169– 3174
CrossRef ADS Google scholar
[52]
JonsonM, MahanG D. Mott’s formula for the thermopower and the Wiedemann-Franz law. Physical Review B: Condensed Matter, 1980, 21( 10): 4223– 4229
CrossRef ADS Google scholar
[53]
YangJ, MeisnerG P, ChenL. Strain field fluctuation effects on lattice thermal conductivity of ZrNiSn-based thermoelectric compounds. Applied Physics Letters, 2004, 85( 7): 1140– 1142
CrossRef ADS Google scholar
[54]
MaF, ZhengH B, SunY J. . Strain effect on lattice vibration, heat capacity, and thermal conductivity of graphene. Applied Physics Letters, 2012, 101( 11): 111904
CrossRef ADS Google scholar
[55]
DingB, LiX, ZhouW. . Anomalous strain effect on the thermal conductivity of low-buckled two-dimensional silicene. National Science Review, 2021, 8( 9): nwaa220
CrossRef ADS Google scholar
[56]
HuM, ZhangX, PoulikakosD. Anomalous thermal response of silicene to uniaxial stretching. Physical Review B: Condensed Matter and Materials Physics, 2013, 87( 19): 195417
CrossRef ADS Google scholar
[57]
LiH, ChengG, LiuY. . Anomalous thermal response of graphene kirigami induced by tailored shape to uniaxial tensile strain: a molecular dynamics study. Nanomaterials (Basel, Switzerland), 2020, 10( 1): 126
CrossRef ADS Google scholar
[58]
MortazaviB, LeM Q, RabczukT. . Anomalous strain effect on the thermal conductivity of borophene: a reactive molecular dynamics study. Physica E, Low-Dimensional Systems and Nanostructures, 2017, 93 : 202– 207
CrossRef ADS Google scholar
[59]
TabarraeiA, WangX. Anomalous thermal conductivity of monolayer boron nitride. Applied Physics Letters, 2016, 108( 18): 181904
CrossRef ADS Google scholar
[60]
QianJ, XuB, TianW. A comprehensive theoretical study of halide perovskites ABX3. Organic Electronics, 2016, 37 : 61– 73
CrossRef ADS Google scholar
[61]
YuanY, XuR, XuH T. . Nature of the band gap of halide perovskites ABX3 (A = CH3NH3, Cs; B = Sn, Pb; X = Cl, Br, I): first-principles calculations. Chinese Physics B, 2015, 24( 11): 116302
CrossRef ADS Google scholar
[62]
LeppertL, Reyes-LilloS E, NeatonJ B. Electric field- and strain-induced rashba effect in hybrid halide perovskites. Journal of Physical Chemistry Letters, 2016, 7( 18): 3683– 3689
CrossRef ADS Google scholar
[63]
LiaoM, LiuY, CuiP. . Modeling of alloying effect on elastic properties in BCC Nb-Ti-V-Zr solid solution: from unary to quaternary. Computational Materials Science, 2020, 172 : 109289
CrossRef ADS Google scholar
[64]
KangJ, WangL W. High defect tolerance in lead halide perovskite CsPbBr3. Journal of Physical Chemistry Letters, 2017, 8( 2): 489– 493
CrossRef ADS Google scholar
[65]
ZhangQ, SongQ, WangX. . Deep defect level engineering: a strategy of optimizing the carrier concentration for high thermoelectric performance. Energy & Environmental Science, 2018, 11( 4): 933– 940
CrossRef ADS Google scholar
[66]
RenW, SongQ, ZhuH. . Intermediate-level doping strategy to simultaneously optimize power factor and phonon thermal conductivity for improving thermoelectric figure of merit. Materials Today Physics, 2020, 15 : 100250
CrossRef ADS Google scholar
[67]
ShinW H, RohJ W, RyuB. . Enhancing thermoelectric performances of bismuth antimony telluride via synergistic combination of multiscale structuring and band alignment by FeTe2 incorporation. ACS Applied Materials & Interfaces, 2018, 10( 4): 3689– 3698
CrossRef ADS Google scholar
[68]
KimS I, LeeK H, MunH A. . Dense dislocation arrays embedded in grain boundaries for high-performance bulk thermoelectrics. Science, 2015, 348( 6230): 109– 114
CrossRef ADS Google scholar
[69]
ZhengL, ZhuT, LiY. . Enhanced thermoelectric performance of F4-TCNQ doped FASnI3 thin films. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2020, 8( 47): 25431– 25442
CrossRef ADS Google scholar
[70]
WeiJ, YangL, MaZ. . Review of current high-ZT thermoelectric materials. Journal of Materials Science, 2020, 55( 27): 12642– 12704
CrossRef ADS Google scholar
[71]
LanJ L, LiuY C, ZhanB. . Enhanced thermoelectric properties of Pb-doped BiCuSeO ceramics. Advanced Materials, 2013, 25( 36): 5086– 5090
CrossRef ADS Google scholar
[72]
LiuH, YuanX, LuP. . Ultrahigh thermoelectric performance by electron and phonon critical scattering in Cu2Se1–xIx. Advanced Materials, 2013, 25( 45): 6607– 6612
CrossRef ADS Google scholar
[73]
QinB, WangD, HeW. . Realizing high thermoelectric performance in p-type SnSe through crystal structure modification. Journal of the American Chemical Society, 2019, 141( 2): 1141– 1149
CrossRef ADS Google scholar
[74]
ZhuH, MaoJ, LiY. . Discovery of TaFeSb-based half-Heuslers with high thermoelectric performance. Nature Communications, 2019, 10( 1): 270
CrossRef ADS Google scholar
[75]
XingT, SongQ, QiuP. . Superior performance and high service stability for GeTe-based thermoelectric compounds. National Science Review, 2019, 6( 5): 944– 954
CrossRef ADS Google scholar

Acknowledgements

This work was financially supported by the Thousand Talent Young Scholar Program (BE0200006), Shanghai Aerospace Science and Technology Innovation Fund (USCAST2020-13), the Oceanic Interdisciplinary Program from Shanghai Jiao Tong University (SL2020MS008), and the National Natural Science Foundation of China (Grant No. 51776041).

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