Fluidics for energy harvesting: from nano to milli scales.
暂无分享,去创建一个
[1] Yewang Su,et al. A Droplet-Based Triboelectric-Piezoelectric Hybridized Nanogenerator for Scavenging Mechanical Energy , 2022, SSRN Electronic Journal.
[2] M. Arias,et al. An environmental and economic sustainability assessment of a pressure retarded osmosis system , 2022, Desalination.
[3] G. Jiang,et al. Water–solid contact electrification causes hydrogen peroxide production from hydroxyl radical recombination in sprayed microdroplets , 2022, Proceedings of the National Academy of Sciences of the United States of America.
[4] A. Cipollina,et al. Power Production from Produced Waters via Reverse Electrodialysis: A Preliminary Assessment , 2022, Energies.
[5] Yong Ju Jung,et al. Multilayered Graphene-Coated Metal Current Collectors with High Electrical Conductivity and Corrosion Resistivity for Flow-Electrode Capacitive Mixing , 2022, ACS Sustainable Chemistry & Engineering.
[6] A. Colin,et al. New membrane and electrode assembly concept to improve salinity energy harvesting. , 2022, Energy Conversion and Management.
[7] H. Olin,et al. Advances in Inorganic Nanomaterials for Triboelectric Nanogenerators , 2021, ACS nanoscience Au.
[8] W. Brilman,et al. Scaled-up multistage reverse electrodialysis pilot study with natural waters , 2022, Chemical Engineering Journal.
[9] Longcheng Liu,et al. Comparative study on the performance of capacitive mixing under different operational modes , 2022, Energy Reports.
[10] H. Hamelers,et al. Fouling fractionation in reverse electrodialysis with natural feed waters demonstrates dual media rapid filtration as an effective pre-treatment for fresh water , 2021 .
[11] Shuangfei Wang,et al. Advanced triboelectric materials for liquid energy harvesting and emerging application , 2021, Materials Today.
[12] Yong Ju Jung,et al. Cross Effect of Surface Area and Electrical Conductivity for Carbonaceous Materials in Flow-electrode Capacitive Mixing (F-CapMix) and Flow-electrode Capacitive Deionization (FCDI): Solid-like Behavior of Flow-electrode , 2021, ACS Sustainable Chemistry & Engineering.
[13] Wei‐Shan Hsu,et al. Miniaturized Salinity Gradient Energy Harvesting Devices , 2021, Molecules.
[14] Zhong Lin Wang,et al. Contact Electrification at the Liquid-Solid Interface. , 2021, Chemical reviews.
[15] Lei Jiang,et al. Large-scale, robust mushroom-shaped nanochannel array membrane for ultrahigh osmotic energy conversion , 2021, Science Advances.
[16] G. Millar,et al. Pressure retarded osmosis: Advancement, challenges and potential , 2021 .
[17] Jung-Hyun Lee,et al. High-performance and durable pressure retarded osmosis membranes fabricated using hydrophilized polyethylene separators , 2021 .
[18] Mitsuru Higa,et al. Power Generation Performance of a Pilot-Scale Reverse Electrodialysis Using Monovalent Selective Ion-Exchange Membranes , 2021, Membranes.
[19] Zong-Hong Lin,et al. Ingestible polysaccharide battery coupled with a self-charging nanogenerator for controllable disinfection system , 2021 .
[20] Jong-Oh Kim,et al. Optimization of the number of cell pairs to design efficient reverse electrodialysis stack , 2021 .
[21] H. Shon,et al. Enhanced water permeability and osmotic power generation with sulfonate-functionalized porous polymer-incorporated thin film nanocomposite membranes , 2020 .
[22] N. Hilal,et al. Salinity gradient energy generation by pressure retarded osmosis: A review , 2020 .
[23] M. Bryjak,et al. Charge-doped electrodes for power production using the salinity gradient in CapMix , 2020 .
[24] W. J. Smit,et al. Integration of a soft dielectric composite into a cantilever beam for mechanical energy harvesting, comparison between capacitive and triboelectric transducers , 2020, Scientific Reports.
[25] Fenglin Yang,et al. Recent development of pressure retarded osmosis membranes for water and energy sustainability: A critical review. , 2020, Water research.
[26] J. DeCarolis,et al. Life cycle assessment of salinity gradient energy recovery using reverse electrodialysis , 2020, Journal of Industrial Ecology.
[27] P. Show,et al. Sustainable membrane technology for resource recovery from wastewater: Forward osmosis and pressure retarded osmosis , 2020 .
[28] A. Olabi,et al. Recent developments in pressure retarded osmosis for desalination and power generation , 2020 .
[29] Joon Ha Kim,et al. A comprehensive review of the feasibility of pressure retarded osmosis: Recent technological advances and industrial efforts towards commercialization , 2020 .
[30] Mitsuru Higa,et al. Power generation performance of a bench-scale reverse electrodialysis stack using wastewater discharged from sewage treatment and seawater reverse osmosis , 2020 .
[31] Lei Zhang,et al. Recent progress in the use of electrochemical impedance spectroscopy for the measurement, monitoring, diagnosis and optimization of proton exchange membrane fuel cell performance , 2020 .
[32] Y. Nakanishi,et al. Effects of porous electrode pore size and operating flow rate on the energy production of capacitive energy extraction , 2020 .
[33] E. Curcio,et al. Energy Harvesting from Brines by Reverse Electrodialysis Using Nafion Membranes , 2020, Membranes.
[34] Won Hee Lee,et al. Thin film composite on fluorinated thermally rearranged polymer nanofibrous membrane achieves power density of 87 W m−2 in pressure retarded osmosis, improving economics of osmotic heat engine , 2020 .
[35] Y. Liu,et al. New Hydrophobic Organic Coating based Triboelectric Nanogenerator for Efficient and Stable Hydropower Harvesting. , 2020, ACS applied materials & interfaces.
[36] Ji Hoon Kim,et al. A highly robust and water permeable thin film composite membranes for pressure retarded osmosis generating 26 W·m−2 at 21 bar , 2020, Desalination.
[37] Sung Jea Park,et al. Monocharged electret based liquid-solid interacting triboelectric nanogenerator for its boosted electrical output performance , 2020 .
[38] A. A. Moya. Uphill transport in improved reverse electrodialysis by removal of divalent cations in the dilute solution: A Nernst-Planck based study , 2020 .
[39] F. Buda,et al. Power generation by reverse electrodialysis in a single-layer nanoporous membrane made from core–rim polycyclic aromatic hydrocarbons , 2020, Nature Nanotechnology.
[40] Zhong Lin Wang,et al. Environmental energy harvesting based on triboelectric nanogenerators , 2020, Nanotechnology.
[41] Zhong Lin Wang,et al. A droplet-based electricity generator with high instantaneous power density , 2020, Nature.
[42] Zhong Lin Wang. On the first principle theory of nanogenerators from Maxwell's equations , 2020 .
[43] G. Dreyfuss,et al. U1 snRNP regulates cancer cell migration and invasion , 2019, bioRxiv.
[44] K. Ahn,et al. Unsteady streaming flow based TENG using hydrophobic film tube with different charge affinity , 2020 .
[45] K. Ahn,et al. Harvesting liquid stream energy from unsteady peristaltic flow induced pulsatile Flow-TENG (PF-TENG) using slipping polymeric surface inside elastomeric tubing , 2019, Nano Energy.
[46] A. Childress,et al. Limiting power density in pressure-retarded osmosis: Observation and implications , 2019, Desalination.
[47] George Kosmadakis,et al. Application of reverse electrodialysis to site-specific types of saline solutions: A techno-economic assessment , 2019, Energy.
[48] H. Shon,et al. Thin-film composite hollow fiber membranes incorporated with graphene oxide in polyethersulfone support layers for enhanced osmotic power density , 2019, Desalination.
[49] Xu Deng,et al. Surface charge printing for programmed droplet transport , 2019, Nature Materials.
[50] Yi Cui,et al. Charge-Free Mixing Entropy Battery Enabled by Low-Cost Electrode Materials , 2019, ACS omega.
[51] M. Hatzell,et al. Efficiency of Thermally Assisted Capacitive Mixing and Deionization Systems , 2019, ACS Sustainable Chemistry & Engineering.
[52] Aurelia Chi Wang,et al. On the origin of contact-electrification , 2019, Materials Today.
[53] Jeong F. Kim,et al. Tailoring the porous structure of hollow fiber membranes for osmotic power generation applications via thermally assisted nonsolvent induced phase separation , 2019, Journal of Membrane Science.
[54] H. Shon,et al. Melamine-based covalent organic framework-incorporated thin film nanocomposite membrane for enhanced osmotic power generation , 2019, Desalination.
[55] J. Tour,et al. Laser-Induced Graphene Triboelectric Nanogenerators. , 2019, ACS nano.
[56] B. Nath. Water on Earth , 2019, Resonance.
[57] Fei Li,et al. High‐Performance Transparent and Flexible Triboelectric Nanogenerators Based on PDMS‐PTFE Composite Films , 2019, Advanced Electronic Materials.
[58] Lei Jiang,et al. Understanding the Giant Gap between Single-Pore- and Membrane-Based Nanofluidic Osmotic Power Generators. , 2019, Small.
[59] Ying Wang,et al. Carbonized peat moss electrodes for efficient salinity gradient energy recovery in a capacitive concentration flow cell , 2019, Electrochimica Acta.
[60] K. Nijmeijer,et al. Role of anion exchange membrane fouling in reverse electrodialysis using natural feed waters , 2019 .
[61] Hyun-Chul Kim,et al. Assessing the behavior of the feed-water constituents of a pilot-scale 1000-cell-pair reverse electrodialysis with seawater and municipal wastewater effluent. , 2019, Water research.
[62] Marco P. Soares dos Santos,et al. Graphene-based materials and structures for energy harvesting with fluids – A review , 2018, Materials Today.
[63] E. Curcio,et al. Reverse Electrodialysis for energy production from natural river water and seawater , 2018, Energy.
[64] John H. Lienhard,et al. Economic framework for net power density and levelized cost of electricity in pressure-retarded osmosis , 2018, Desalination.
[65] Bopeng Zhang,et al. Monovalent-anion selective and antifouling polyelectrolytes multilayer anion exchange membrane for reverse electrodialysis , 2018, Journal of Membrane Science.
[66] Qais A. Khasawneh,et al. Techno-Economic Feasibility Study of a Hypersaline Pressure-Retarded Osmosis Power Plants: Dead Sea–Red Sea Conveyor , 2018, Energies.
[67] Yongsheng Chen,et al. A freestanding graphene oxide membrane for efficiently harvesting salinity gradient power , 2018, Carbon.
[68] V. Nikonenko,et al. Can the electrochemical performance of heterogeneous ion-exchange membranes be better than that of homogeneous membranes? , 2018, Journal of Membrane Science.
[69] Sherub Phuntsho,et al. Dual-layered nanocomposite membrane incorporating graphene oxide and halloysite nanotube for high osmotic power density and fouling resistance , 2018, Journal of Membrane Science.
[70] Tai‐Shung Chung,et al. Sulfonated hyperbranched polyglycerol grafted membranes with antifouling properties for sustainable osmotic power generation using municipal wastewater , 2018, Journal of Membrane Science.
[71] H. Matsuyama,et al. Development of High-Flux and Robust Reinforced Aliphatic Polyketone Thin-Film Composite Membranes for Osmotic Power Generation: Role of Reinforcing Materials , 2018, Industrial & Engineering Chemistry Research.
[72] Ramato Ashu Tufa,et al. Progress and prospects in reverse electrodialysis for salinity gradient energy conversion and storage , 2018, Applied Energy.
[73] W. J. Smit,et al. Microporous electrostrictive materials for vibrational energy harvesting , 2018, Multifunctional Materials.
[74] Zhong Lin Wang,et al. Rationally designed sea snake structure based triboelectric nanogenerators for effectively and efficiently harvesting ocean wave energy with minimized water screening effect , 2018, Nano Energy.
[75] Tai‐Shung Chung,et al. Thin-film composite hollow fiber membrane with inorganic salt additives for high mechanical strength and high power density for pressure-retarded osmosis , 2018, Journal of Membrane Science.
[76] Francesco Giacalone,et al. Exergy analysis of reverse electrodialysis , 2018 .
[77] Tai‐Shung Chung,et al. Novel thin film composite hollow fiber membranes incorporated with carbon quantum dots for osmotic power generation , 2018 .
[78] Y. Lee,et al. A robust thin film composite membrane incorporating thermally rearranged polymer support for organic solvent nanofiltration and pressure retarded osmosis , 2018 .
[79] K. Nijmeijer,et al. Mitigation of the effects of multivalent ion transport in reverse electrodialysis , 2018 .
[80] Rong Wang,et al. Integral hollow fiber membrane with chemical cross-linking for pressure retarded osmosis operated in the orientation of active layer facing feed solution , 2018 .
[81] D. Ladner,et al. Thin-film composite membranes on polyester woven mesh with variable opening size for pressure-retarded osmosis , 2018 .
[82] Rong Wang,et al. Module scale-up and performance evaluation of thin film composite hollow fiber membranes for pressure retarded osmosis , 2018 .
[83] Shurong Dong,et al. Emulsion Electrospinning of Polytetrafluoroethylene (PTFE) Nanofibrous Membranes for High-Performance Triboelectric Nanogenerators. , 2018, ACS applied materials & interfaces.
[84] M. Kurihara,et al. SWRO-PRO System in “Mega-ton Water System” for Energy Reduction and Low Environmental Impact , 2018 .
[85] Tai‐Shung Chung,et al. Carbon Quantum Dots Grafted Antifouling Membranes for Osmotic Power Generation via Pressure-Retarded Osmosis Process. , 2017, Environmental science & technology.
[86] M. Bocquet,et al. New avenues for the large-scale harvesting of blue energy , 2017 .
[87] Douglas F. Call,et al. Impact of natural organic matter and inorganic solutes on energy recovery from five real salinity gradients using reverse electrodialysis , 2017 .
[88] Sheng Long Gaw,et al. Wearable All‐Fabric‐Based Triboelectric Generator for Water Energy Harvesting , 2017 .
[89] Tao Jiang,et al. Toward the blue energy dream by triboelectric nanogenerator networks , 2017 .
[90] Yue Wang,et al. Influential analysis of concentration polarization on water flux and power density in PRO process: Modeling and experiments , 2017 .
[91] Hyunsoo Kim,et al. Interdigital electrode based triboelectric nanogenerator for effective energy harvesting from water , 2017 .
[92] H. Matsuyama,et al. Biofouling phenomena on anion exchange membranes under the reverse electrodialysis process , 2017 .
[93] Ludwik Leibler,et al. High-performance vitrimers from commodity thermoplastics through dioxaborolane metathesis , 2017, Science.
[94] Fernando Tadeo,et al. Green energy generation by pressure retarded osmosis: State of the art and technical advancement—review , 2017 .
[95] Zhong Lin Wang. On Maxwell's displacement current for energy and sensors: the origin of nanogenerators , 2017 .
[96] Tai‐Shung Chung,et al. Tuning water content in polymer dopes to boost the performance of outer-selective thin-film composite (TFC) hollow fiber membranes for osmotic power generation , 2017 .
[97] Zhong Lin Wang. Catch wave power in floating nets , 2017, Nature.
[98] Tai‐Shung Chung,et al. Thin-film composite (TFC) hollow fiber membrane with double-polyamide active layers for internal concentration polarization and fouling mitigation in osmotic processes , 2017 .
[99] Andrea Cipollina,et al. Towards 1 kW power production in a reverse electrodialysis pilot plant with saline waters and concentrated brines , 2017 .
[100] S. Nunes,et al. Hollow fiber membrane lumen modified by polyzwitterionic grafting , 2017 .
[101] Tai‐Shung Chung,et al. Design and fabrication of inner-selective thin-film composite (TFC) hollow fiber modules for pressure retarded osmosis (PRO) , 2017 .
[102] C. Wan,et al. Zwitterions coated hollow fiber membranes with enhanced antifouling properties for osmotic power generation from municipal wastewater. , 2016, Water research.
[103] Ngai Yin Yip,et al. Salinity Gradients for Sustainable Energy: Primer, Progress, and Prospects. , 2016, Environmental science & technology.
[104] Tai‐Shung Chung,et al. Evolution of micro-deformation in inner-selective thin film composite hollow fiber membranes and its implications for osmotic power generation , 2016 .
[105] Rong Wang,et al. Influence of macromolecular additive on reinforced flat-sheet thin film composite pressure-retarded osmosis membranes , 2016 .
[106] Xinqin Liao,et al. Integrated multi-unit transparent triboelectric nanogenerator harvesting rain power for driving electronics , 2016 .
[107] Sarper Sarp,et al. Pressure Retarded Osmosis (PRO): Past experiences, current developments, and future prospects , 2016 .
[108] H. Shon,et al. Influence of colloidal fouling on pressure retarded osmosis , 2016 .
[109] Rong Wang,et al. Unique roles of aminosilane in developing anti-fouling thin film composite (TFC) membranes for pressure retarded osmosis (PRO) , 2016 .
[110] G. Iglesias,et al. Stacking of capacitive cells for electrical energy production by salinity exchange , 2016 .
[111] A. Mokrini,et al. Techno-Economics of a New High Throughput Process for Proton Exchange Membranes Manufacturing , 2016 .
[112] Jian Wang,et al. Revised spacer design to improve hydrodynamics and anti-fouling behavior in reverse electrodialysis processes , 2016 .
[113] Tai‐Shung Chung,et al. Robust outer-selective thin-film composite polyethersulfone hollow fiber membranes with low reverse salt flux for renewable salinity-gradient energy generation , 2016 .
[114] Tai‐Shung Chung,et al. Outer-selective thin film composite (TFC) hollow fiber membranes for osmotic power generation , 2016 .
[115] Chuyang Y. Tang,et al. Fabrication and Characterization of Fabric-reinforced Pressure Retarded Osmosis Membranes for Osmotic Power Harvesting , 2016 .
[116] Tao Jiang,et al. Multilayer wavy-structured robust triboelectric nanogenerator for harvesting water wave energy , 2016 .
[117] Rong Wang,et al. Identification of safe and stable operation conditions for pressure retarded osmosis with high performance hollow fiber membrane , 2016 .
[118] Giorgio Micale,et al. Performance of the first reverse electrodialysis pilot plant for power production from saline waters and concentrated brines , 2016 .
[119] Chuyang Y. Tang,et al. Membrane fouling in osmotically driven membrane processes: A review , 2016 .
[120] Heechul Choi,et al. Thin-film nanocomposite membrane with CNT positioning in support layer for energy harvesting from saline water , 2016 .
[121] H. Hamelers,et al. Parallel up-scaling of Capacitive Mixing (CapMix) system enhances the specific performance , 2016 .
[122] Nawshad Akther,et al. Recent advancements in forward osmosis desalination: A review , 2015 .
[123] Tai‐Shung Chung,et al. Sandwich-structured hollow fiber membranes for osmotic power generation , 2015 .
[124] E. Brauns,et al. Reverse Electrodialysis with saline waters and concentrated brines: a laboratory investigation towards technology scale-up , 2015 .
[125] Chuyang Y. Tang,et al. Structural stability and mass transfer properties of pressure retarded osmosis (PRO) membrane under high operating pressures , 2015 .
[126] Guang Zhu,et al. Triboelectric Charging at the Nanostructured Solid/Liquid Interface for Area-Scalable Wave Energy Conversion and Its Use in Corrosion Protection. , 2015, ACS nano.
[127] Rong Wang,et al. Synthesis and characterization of high-performance novel thin film nanocomposite PRO membranes with tiered nanofiber support reinforced by functionalized carbon nanotubes , 2015 .
[128] Chun Feng Wan,et al. Enhanced fouling by inorganic and organic foulants on pressure retarded osmosis (PRO) hollow fiber membranes under high pressures , 2015 .
[129] Kelsey B. Hatzell,et al. Using Flow Electrodes in Multiple Reactors in Series for Continuous Energy Generation from Capacitive Mixing , 2014 .
[130] Gang Han,et al. Conceptual demonstration of novel closed-loop pressure retarded osmosis process for sustainable osmotic energy generation , 2014 .
[131] Sui Zhang,et al. Pressure retarded osmosis dual-layer hollow fiber membranes developed by co-casting method and ammonium persulfate (APS) treatment , 2014 .
[132] Zhong Lin Wang,et al. Hybrid triboelectric nanogenerator for harvesting water wave energy and as a self-powered distress signal emitter , 2014 .
[133] Tai‐Shung Chung,et al. Anti-fouling behavior of hyperbranched polyglycerol-grafted poly(ether sulfone) hollow fiber membranes for osmotic power generation. , 2014, Environmental science & technology.
[134] Jong-Soo Park,et al. Preparation, characterization and performance evaluations of thin film composite hollow fiber membrane for energy generation , 2014 .
[135] Zhong Lin Wang,et al. Harvesting Water Drop Energy by a Sequential Contact‐Electrification and Electrostatic‐Induction Process , 2014, Advanced materials.
[136] Weiqing Yang,et al. Harvesting broadband kinetic impact energy from mechanical triggering/vibration and water waves. , 2014, ACS nano.
[137] Jin Gi Hong,et al. Nanocomposite reverse electrodialysis (RED) ion-exchange membranes for salinity gradient power generation , 2014 .
[138] Keehong Kim,et al. Synthesis, characterization and surface modification of PES hollow fiber membrane support with polydopamine and thin film composite for energy generation , 2014 .
[139] Zhong Lin Wang,et al. Dual-mode triboelectric nanogenerator for harvesting water energy and as a self-powered ethanol nanosensor. , 2014, ACS nano.
[140] Wanlin Guo,et al. Generating electricity by moving a droplet of ionic liquid along graphene. , 2014, Nature nanotechnology.
[141] Zhong Lin Wang,et al. Harvesting water wave energy by asymmetric screening of electrostatic charges on a nanostructured hydrophobic thin-film surface. , 2014, ACS nano.
[142] Menachem Elimelech,et al. Thermodynamic, energy efficiency, and power density analysis of reverse electrodialysis power generation with natural salinity gradients. , 2014, Environmental science & technology.
[143] Rien Herber,et al. Upscale potential and financial feasibility of a reverse electrodialysis power plant , 2014 .
[144] Yue Cui,et al. Enhanced osmotic energy generation from salinity gradients by modifying thin film composite membranes , 2014 .
[145] Dc Kitty Nijmeijer,et al. Experimentally obtainable energy from mixing river water, seawater or brines with reverse electrodialysis , 2014 .
[146] Tai‐Shung Chung,et al. Design of robust hollow fiber membranes with high power density for osmotic energy production , 2014 .
[147] Nhu-Ngoc Bui,et al. Nanofiber supported thin-film composite membrane for pressure-retarded osmosis. , 2014, Environmental science & technology.
[148] Yongsheng Fan,et al. Blue energy: Current technologies for sustainable power generation from water salinity gradient , 2014 .
[149] Gang Han,et al. Robust and high performance pressure retarded osmosis hollow fiber membranes for osmotic power generation , 2014 .
[150] Dc Kitty Nijmeijer,et al. Enhanced mixing in the diffusive boundary layer for energy generation in reverse electrodialysis , 2014 .
[151] Charles James Lemckert,et al. Osmotic power with Pressure Retarded Osmosis: Theory, performance and trends – A review , 2014 .
[152] Zhong Lin Wang,et al. Simultaneously harvesting electrostatic and mechanical energies from flowing water by a hybridized triboelectric nanogenerator. , 2014, ACS nano.
[153] Menachem Elimelech,et al. Raising the Bar: Increased Hydraulic Pressure Allows Unprecedented High Power Densities in Pressure-Retarded Osmosis , 2014 .
[154] Rong Wang,et al. Robust and High performance hollow fiber membranes for energy harvesting from salinity gradients by pressure retarded osmosis , 2013 .
[155] Tai‐Shung Chung,et al. Effects of free volume in thin-film composite membranes on osmotic power generation , 2013 .
[156] Zhong Lin Wang,et al. Water-solid surface contact electrification and its use for harvesting liquid-wave energy. , 2013, Angewandte Chemie.
[157] K. Nijmeijer,et al. Performance-determing membrane properties in reverse electrodialysis , 2013 .
[158] Shi‐Peng Sun,et al. Outer-selective pressure-retarded osmosis hollow fiber membranes from vacuum-assisted interfacial polymerization for osmotic power generation. , 2013, Environmental science & technology.
[159] Chuyang Y. Tang,et al. Effect of feed spacer induced membrane deformation on the performance of pressure retarded osmosis (PRO): Implications for PRO process operation , 2013 .
[160] Menachem Elimelech,et al. Influence of natural organic matter fouling and osmotic backwash on pressure retarded osmosis energy production from natural salinity gradients. , 2013, Environmental science & technology.
[161] Volker Presser,et al. Review on the science and technology of water desalination by capacitive deionization , 2013 .
[162] D. Brogioli,et al. Capacitive mixing for the extraction of energy from salinity differences: survey of experimental results and electrochemical models. , 2013, Journal of colloid and interface science.
[163] Sui Zhang,et al. POSS-containing delamination-free dual-layer hollow fiber membranes for forward osmosis and osmotic power generation , 2013 .
[164] J. Eijkel,et al. The microfluidic Kelvin water dropper. , 2013, Lab on a chip.
[165] Evelyn N Wang,et al. Electrostatic charging of jumping droplets , 2013, Nature Communications.
[166] Tai‐Shung Chung,et al. High performance thin film composite pressure retarded osmosis (PRO) membranes for renewable salinity-gradient energy generation , 2013 .
[167] Gang Han,et al. Highly robust thin-film composite pressure retarded osmosis (PRO) hollow fiber membranes with high power densities for renewable salinity-gradient energy generation. , 2013, Environmental science & technology.
[168] Tai‐Shung Chung,et al. Deformation and reinforcement of thin-film composite (TFC) polyamide-imide (PAI) membranes for osmotic power generation , 2013 .
[169] Xiaoxiao Song,et al. Energy recovery from concentrated seawater brine by thin-film nanofiber composite pressure retarded osmosis membranes with high power density , 2013 .
[170] Edvard Sivertsen,et al. Pressure retarded osmosis efficiency for different hollow fibre membrane module flow configurations , 2013 .
[171] Kitty Nijmeijer,et al. Fouling in reverse electrodialysis under natural conditions. , 2013, Water research.
[172] Alessandro Siria,et al. Giant osmotic energy conversion measured in a single transmembrane boron nitride nanotube , 2013, Nature.
[173] Yu Chang Kim,et al. Potential of osmotic power generation by pressure retarded osmosis using seawater as feed solution: Analysis and experiments , 2013 .
[174] Sui Zhang,et al. Substrate modifications and alcohol treatment on thin film composite membranes for osmotic power , 2013 .
[175] H. Hamelers,et al. Exploiting the spontaneous potential of the electrodes used in the capacitive mixing technique for the extraction of energy from salinity difference , 2012 .
[176] Enver Guler,et al. Tailor-made anion-exchange membranes for salinity gradient power generation using reverse electrodialysis. , 2012, ChemSusChem.
[177] M. Elimelech,et al. Membrane-based processes for sustainable power generation using water , 2012, Nature.
[178] Chuyang Y. Tang,et al. Osmotic power production from salinity gradient resource by pressure retarded osmosis: Effects of operating conditions and reverse solute diffusion , 2012 .
[179] Menachem Elimelech,et al. Adverse impact of feed channel spacers on the performance of pressure retarded osmosis. , 2012, Environmental science & technology.
[180] Zhong Lin Wang,et al. Flexible triboelectric generator , 2012 .
[181] Chuyang Y. Tang,et al. Thin-film composite hollow fiber membranes for Pressure Retarded Osmosis (PRO) process with high power density , 2012 .
[182] Dc Kitty Nijmeijer,et al. Power generation using profiled membranes in reverse electrodialysis , 2011 .
[183] R. B. Sadeghian,et al. Miniaturized concentration cells for small-scale energy harvesting based on reverse electrodialysis , 2011 .
[184] Adnan Harb,et al. Energy harvesting: State-of-the-art , 2011 .
[185] Shuaifei Zhao,et al. Relating solution physicochemical properties to internal concentration polarization in forward osmos , 2011 .
[186] M. Elimelech,et al. The Future of Seawater Desalination: Energy, Technology, and the Environment , 2011, Science.
[187] Kitty Nijmeijer,et al. Doubled power density from salinity gradients at reduced intermembrane distance. , 2011, Environmental science & technology.
[188] Yunfeng Shi,et al. Harvesting energy from water flow over graphene. , 2011, Nano letters.
[189] Mickaël Lallart,et al. Recent Progress in Piezoelectric Conversion and Energy Harvesting Using Nonlinear Electronic Interfaces and Issues in Small Scale Implementation , 2011, Micromachines.
[190] Ngai Yin Yip,et al. Thin-film composite pressure retarded osmosis membranes for sustainable power generation from salinity gradients. , 2011, Environmental science & technology.
[191] Yi Cui,et al. Batteries for efficient energy extraction from a water salinity difference. , 2011, Nano letters.
[192] T. S. Bhatti,et al. A review on electrochemical double-layer capacitors , 2010 .
[193] G Jan Harmsen,et al. Electrical power from sea and river water by reverse electrodialysis: a first step from the laboratory to a real power plant. , 2010, Environmental science & technology.
[194] P. M. Biesheuvel,et al. Direct power production from a water salinity difference in a membrane-modified supercapacitor flow cell. , 2010, Environmental science & technology.
[195] G. J. Harmsen,et al. Reverse electrodialysis: evaluation of suitable electrode systems , 2010 .
[196] Hubertus V. M. Hamelers,et al. Towards implementation of reverse electrodialysis for power generation from salinity gradients , 2010 .
[197] Amy E. Childress,et al. Power generation with pressure retarded osmosis: An experimental and theoretical investigation , 2009 .
[198] G. J. Harmsen,et al. Reverse electrodialysis: Comparison of six commercial membrane pairs on the thermodynamic efficiency and power density , 2009 .
[199] G. J. Harmsen,et al. Reverse electrodialysis : Performance of a stack with 50 cells on the mixing of sea and river water , 2009 .
[200] Daniel J. Inman,et al. Energy Harvesting Technologies , 2008 .
[201] J. Post,et al. Energy recovery from controlled mixing salt and fresh water with a reverse electrodialysis system. , 2008, Environmental science & technology.
[202] Matthias Wessling,et al. Current status of ion exchange membranes for power generation from salinity gradients , 2008 .
[203] Stein Erik Skilhagen,et al. Membrane processes in energy supply for an osmotic power plant , 2008 .
[204] Stein Erik Skilhagen,et al. Osmotic power — power production based on the osmotic pressure difference between waters with varying salt gradients , 2008 .
[205] Marian Turek,et al. Power production from coal-mine brine utilizing reversed electrodialysis , 2008 .
[206] Marian Turek,et al. Renewable energy by reverse electrodialysis , 2007 .
[207] M. Kariduraganavar,et al. Ion-exchange membranes: preparative methods for electrodialysis and fuel cell applications , 2006 .
[208] Jacob H. Masliyah,et al. Electrokinetic and Colloid Transport Phenomena: Masliyah/Electrokinetic and Colloid Transport Phenomena , 2006 .
[209] K. Asano,et al. Electrification phenomena of pure water droplets dripping and sliding on a polymer surface , 1994 .
[210] Joseph Jagur-Grodzinski,et al. Novel process for direct conversion of free energy of mixing into electric power , 1986 .
[211] R. Audinos,et al. Electrodialyse inverse. Etude de l'energie electrique obtenue a partir de deux solutions de salinites differentes , 1983 .
[212] R. S. Norman. Water Salination: A Source of Energy , 1974, Science.
[213] F. A. Morrison,et al. Electrokinetic Energy Conversion in Ultrafine Capillaries , 1965 .
[214] R. E. Pattle. Production of Electric Power by mixing Fresh and Salt Water in the Hydroelectric Pile , 1954, Nature.