Effects of nanostructure on clean energy: big solutions gained from small features

Science Bulletin - Tập 60 Số 24 - Trang 2083-2090 - 2015
Jinyan Xiong1, Chao Han1, Zhen Li1,2, Shi Xue Dou1
1Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, North Wollongong, NSW, 2500, Australia
2School of Radiation Medicine and Radiation Protection, Collaborative Innovation Center of Radiation Medicine of Jiangsu Higher Education Institutions, Soochow University, Suzhou 215123, China

Tóm tắt

Từ khóa


Tài liệu tham khảo

Chen, 2014, Au@SiO2 core/shell nanoparticle-decorated TiO2 nanorod arrays for enhanced photoelectrochemical water splitting, Chin Sci Bull, 59, 2191, 10.1007/s11434-014-0188-7

Han, 2014, Recent progress in thermoelectric materials, Chin Sci Bull, 59, 2073, 10.1007/s11434-014-0237-2

Li, 2014, Nanostructured SnO2 photoanode-based dye-sensitized solar cells, Chin Sci Bull, 59, 2122, 10.1007/s11434-013-0079-3

Qiu, 2014, Hydrogenation of nanostructured semiconductors for energy conversion and storage, Chin Sci Bull, 59, 2144, 10.1007/s11434-014-0186-9

Wang, 2014, Polarization behavior of microbial fuel cells under stack operation, Chin Sci Bull, 59, 2214, 10.1007/s11434-014-0243-4

Wen, 2014, Synthesis of Li4Ti5O12 nanostructural anode materials with high charge-discharge capability, Chin Sci Bull, 59, 2162, 10.1007/s11434-014-0262-1

Wen, 2014, Heteroatom-doped graphene for electrochemical energy storage, Chin Sci Bull, 59, 2102, 10.1007/s11434-014-0266-x

Zhang, 2014, Organolead halide perovskites: a family of promising semiconductor materials for solar cells, Chin Sci Bull, 59, 2092, 10.1007/s11434-014-0259-9

Chen, 2015, Room-temperature synthesis of Cu2−xE (E = S, Se) nanotubes with hierarchical architecture as high-performance counter electrodes of quantum-dot-sensitized solar cells, Chem Eur J, 21, 1055, 10.1002/chem.201405354

Chen XQ, Bai Y, Sun Q et al. (2015) Ambient synthesis of one-dimensional/two-dimensional CuAgSe ternary nanotubes as high-performance counter electrodes of quantum-dot-sensitized solar cells. ChemPlusChem. doi:10.1002/cplu.201500466R201500461

Beard, 2014, The promise and challenge of nanostructured solar cells, Nat Nanotechnol, 9, 951, 10.1038/nnano.2014.292

Burschka, 2013, Sequential deposition as a route to high-performance perovskite-sensitized solar cells, Nature, 499, 316, 10.1038/nature12340

Jeon, 2015, Compositional engineering of perovskite materials for high-performance solar cells, Nature, 517, 476, 10.1038/nature14133

Green, 2013, Solar cell efficiency tables (version 42), Prog Photovolt, 21, 827, 10.1002/pip.2404

Jackson, 2011, New world record efficiency for Cu(In, Ga)Se2 thin-film solar cells beyond 20%, Prog Photovolt, 19, 894, 10.1002/pip.1078

Kim, 2012, Lead iodide perovskite sensitized all-solid-state submicron thin film mesoscopic solar cell with efficiency exceeding 9%, Sci Rep, 2, 591, 10.1038/srep00591

Stranks, 2015, Metal-halide perovskites for photovoltaic and light-emitting devices, Nat Nanotechnol, 10, 391, 10.1038/nnano.2015.90

Fujishima, 1972, Electrochemical photolysis of water at a semiconductor electrode, Nature, 238, 37, 10.1038/238037a0

Navarro Yerga, 2009, Water splitting on semiconductor catalysts under visible-light irradiation, ChemSusChem, 2, 471, 10.1002/cssc.200900018

Walter, 2010, Solar water splitting cells, Chem Rev, 110, 6446, 10.1021/cr1002326

Reece, 2011, Wireless solar water splitting using silicon-based semiconductors and earth-abundant catalysts, Science, 334, 645, 10.1126/science.1209816

Brillet, 2012, Highly efficient water splitting by a dual-absorber tandem cell, Nat Photon, 6, 824, 10.1038/nphoton.2012.265

Pinaud, 2013, Technical and economic feasibility of centralized facilities for solar hydrogen production via photocatalysis and photoelectrochemistry, Energy Environ Sci, 6, 1983, 10.1039/c3ee40831k

Osterloh, 2011, Recent developments in solar water-splitting photocatalysis, MRS Bull, 36, 17, 10.1557/mrs.2010.5

Yamada, 2012, Photocatalytic hydrogen evolution with Ni nanoparticles by using 2-phenyl-4-(1-naphthyl)quinolinium ion as a photocatalyst, Energy Environ Sci, 5, 6111, 10.1039/c2ee03106j

Luo, 2014, Water photolysis at 12.3% efficiency via perovskite photovoltaics and earth-abundant catalysts, Science, 345, 1593, 10.1126/science.1258307

Bonke, 2015, Renewable fuels from concentrated solar power: towards practical artificial photosynthesis, Energy Environ Sci, 8, 2791, 10.1039/C5EE02214B

Kärkäs, 2014, Artificial photosynthesis: molecular systems for catalytic water oxidation, Chem Rev, 114, 11863, 10.1021/cr400572f

Wang, 2014, Photocatalytic organic pollutants degradation in metal-organic frameworks, Energy Environ Sci, 7, 2831, 10.1039/C4EE01299B

Chen, 2010, Semiconductor-mediated photodegradation of pollutants under visible-light irradiation, Chem Soc Rev, 39, 4206, 10.1039/b921692h

Tian, 2013, A Bi2WO6-based hybrid photocatalyst with broad spectrum photocatalytic properties under UV, visible, and near-infrared irradiation, Adv Mater, 25, 5075, 10.1002/adma.201302014

Ai, 2014, The preparation of nitrogen-doped TiO2 nanocrystals with exposed 001 facets and their visible-light photocatalytic performances, Chin Sci Bull, 59, 2199, 10.1007/s11434-014-0157-1

Wang, 2014, Pt-induced electrochemical growth of ZnO rods onto reduced graphene oxide for enhanced photodegradation performance, Chin Sci Bull, 59, 2208, 10.1007/s11434-014-0251-4

Xiong, 2011, Well-crystallized square-like 2D BiOCl nanoplates: mannitol-assisted hydrothermal synthesis and improved visible-light-driven photocatalytic performance, RSC Adv, 1, 1542, 10.1039/c1ra00335f

Xiong, 2013, Tunable BiOCl hierarchical nanostructures for high-efficient photocatalysis under visible light irradiation, Chem Eng J, 220, 228, 10.1016/j.cej.2013.01.033

Xiong, 2013, Facile and rapid oxidation fabrication of BiOCl hierarchical nanostructures with enhanced photocatalytic properties, Chem Eur J, 19, 9472, 10.1002/chem.201300384

Cheng, 2013, Facile template-free and fast refluxing synthesis of 3D desertrose-like BiOCl nanoarchitectures with superior photocatalytic activity, New J Chem, 37, 3207, 10.1039/c3nj00413a

Xiong, 2011, BiOCOOH hierarchical nanostructures: shape-controlled solvothermal synthesis and photocatalytic degradation performances, CrystEngComm, 13, 2381, 10.1039/c0ce00705f

Xiong, 2014, Direct conversion of Bi nanospheres into 3D flower-like BiOBr nanoarchitectures with enhanced photocatalytic properties, RSC Adv, 4, 583, 10.1039/C3RA46088F

Zhang, 2014, Photocatalytic oxidation of ammonia by Bi2WO6 nanoplates using fluorescent light, Chin Sci Bull, 59, 2181, 10.1007/s11434-014-0242-5

Xiong, 2014, Facile synthesis of highly efficient one-dimensional plasmonic photocatalysts through Ag@Cu2O core-shell heteronanowires, ACS Appl Mater Interfaces, 6, 15716, 10.1021/am502516s

Liu, 2014, Mesoporous carbon with large pores as anode for Na-ion batteries, Chin Sci Bull, 59, 2186, 10.1007/s11434-014-0164-2

Singh, 2015, Eldfellite, NaFe(SO4)2: an intercalation cathode host for low-cost Na-ion batteries, Energy Environ Sci, 8, 3000, 10.1039/C5EE02274F

Wang, 2015, Probing three-dimensional sodiation–desodiation equilibrium in sodium-ion batteries by in situ hard X-ray nanotomography, Nat Commun, 6, 7496, 10.1038/ncomms8496

Han, 2014, Controlled synthesis of copper telluride nanostructures for long-cycling anodes in lithium ion batteries, J Mater Chem A, 2, 11683, 10.1039/C4TA01579G

Zhang, 2015, One-pot synthesis of ultra-small magnetite nanoparticles on the surface of reduced graphene oxide nanosheets as anodes for sodium-ion batteries, J Mater Chem A, 3, 4793, 10.1039/C4TA06708H

Wang, 2012, A review of electrode materials for electrochemical supercapacitors, Chem Soc Rev, 41, 797, 10.1039/C1CS15060J

Linares, 2014, Mesoporous materials for clean energy technologies, Chem Soc Rev, 43, 7681, 10.1039/C3CS60435G

Manthiram, 2014, Rechargeable lithium–sulfur batteries, Chem Rev, 114, 11751, 10.1021/cr500062v

Balaish, 2014, A critical review on lithium–air battery electrolytes, Phys Chem Chem Phys, 16, 2801, 10.1039/c3cp54165g

Wang, 2015, Practical energy harvesting for microbial fuel cells: a review, Environ Sci Technol, 49, 3267, 10.1021/es5047765

Kilner, 2014, Materials for intermediate-temperature solid-oxide fuel cells, Ann Rev Mater Res, 44, 365, 10.1146/annurev-matsci-070813-113426

Li, 2012, Semiconductor nanowires for thermoelectrics, J Mater Chem, 22, 22821, 10.1039/c2jm33899h

Hicks, 1993, Thermoelectric figure of merit of a one-dimensional conductor, Phys Rev B, 47, 16631, 10.1103/PhysRevB.47.16631

Hicks, 1993, Effect of quantum-well structures on the thermoelectric figure of merit, Phys Rev B, 47, 12727, 10.1103/PhysRevB.47.12727

Harman, 2005, Nanostructured thermoelectric materials, J Electron Mater, 34, L19, 10.1007/s11664-005-0083-8

Han, 2015, Robust scalable synthesis of surfactant-free thermoelectric metal chalcogenide nanostructures, Nano Energy, 15, 193, 10.1016/j.nanoen.2015.04.024

Han, 2014, ambient scalable synthesis of surfactant-free thermoelectric CuAgSe nanoparticles with reversible metallic-n–p conductivity transition, J Am Chem Soc, 136, 17626, 10.1021/ja510433j

Chen, 2015, Ambient facile synthesis of gram-scale copper selenide nanostructures from commercial copper and selenium powder, ACS Appl Mater Interfaces, 7, 13295, 10.1021/acsami.5b01085

Chen, 2015, Aqueous preparation of surfactant-free copper selenide nanowires, J Colloid Interface Sci, 442, 140, 10.1016/j.jcis.2014.11.052

Liu, 2015, Nanowire-bacteria hybrids for unassisted solar carbon dioxide fixation to value-added chemicals, Nano Lett, 15, 3634, 10.1021/acs.nanolett.5b01254

Cuéllar-Franca, 2015, Carbon capture, storage and utilisation technologies: a critical analysis and comparison of their life cycle environmental impacts, J CO2 Util, 9, 82, 10.1016/j.jcou.2014.12.001

Li, 2013, A review of research progress on CO2 capture, storage, and utilization in Chinese Academy of Sciences, Fuel, 108, 112, 10.1016/j.fuel.2011.08.022

Jena, 2011, Materials for hydrogen storage: past, present, and future, J Phys Chem Lett, 2, 206, 10.1021/jz1015372

Durbin, 2013, Review of hydrogen storage techniques for on board vehicle applications, Int J Hydrogen Energy, 38, 14595, 10.1016/j.ijhydene.2013.07.058

Akia, 2014, A review on conversion of biomass to biofuel by nanocatalysts, Biofuel Res J, 1, 16, 10.18331/BRJ2015.1.1.5

Chen, 2015, Thermochemical conversion of microalgal biomass into biofuels: a review, Bioresour Technol, 184, 314, 10.1016/j.biortech.2014.11.050

Zheng, 2013, Bio-inspired optimization of sustainable energy systems: a review, Math Probl Eng, 2013, 12, 10.1155/2013/354523

Bowen, 2014, Piezoelectric and ferroelectric materials and structures for energy harvesting applications, Energy Environ Sci, 7, 25, 10.1039/C3EE42454E

Yan, 2013, Methanation over Ni/SiO2: effect of the catalyst preparation methodologies, Int J Hydrogen Energy, 38, 2283, 10.1016/j.ijhydene.2012.12.024

Gong, 2013, Efficient conversion of biomass into lipids by using the simultaneous saccharification and enhanced lipid production process, Biotechnol Biofuels, 6, 36, 10.1186/1754-6834-6-36

Zhang, 2015, Ammonia borane confined by nitrogen-containing carbon nanotubes: enhanced dehydrogenation properties originating from synergetic catalysis and nanoconfinement, J Mater Chem A, 3, 20494, 10.1039/C5TA05540G

Briscoe, 2012, Nanostructured p–n junctions for kinetic-to-electrical energy conversion, Adv Energy Mater, 2, 1261, 10.1002/aenm.201200205