Controlled Combination of Phosphorescent and Fluorescent Materials to Exploit Energy-Saving Potential in the Built Environment
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[1] G. Zampini,et al. Towards field implementation of photoluminescence in the built environment for passive cooling and lighting energy efficiency , 2022, Applied Energy.
[2] Song Lv,et al. Experimental and numerical comparative investigation on 24h radiative cooling performance of a simple organic composite film , 2022, Energy.
[3] A. Foley,et al. Heating and cooling networks: A comprehensive review of modelling approaches to map future directions , 2022, Energy.
[4] A. Pisello,et al. Effect of optimized photoluminescence concentration on yellow-emitting glass tiles’ luminous and passive cooling potential: A new combined experimental and numerical approach , 2022, Renewable Energy.
[5] O. Mahian,et al. Innovative strategy of passive sub-ambient radiative cooler through incorporation of a thermal rectifier to double-layer nanoparticle-based coating , 2022, Energy.
[6] Federica Rosso,et al. Integrated energy performance of an innovative translucent photoluminescent building envelope for lighting energy storage , 2021 .
[7] A. Pisello,et al. Optimization of photoluminescent materials for lighting energy saving in the built environment , 2021, Journal of Physics: Conference Series.
[8] Guifeng Han,et al. The impact of macro-scale urban form on land surface temperature: An empirical study based on climate zone, urban size and industrial structure in China , 2021 .
[9] A. Pisello,et al. Long Persistent Luminescence: A Road Map Toward Promising Future Developments in Energy and Environmental Science , 2021 .
[10] Anna Laura Pisello,et al. Development of photoluminescent composites for energy efficiency in smart outdoor lighting applications: An experimental and numerical investigation , 2021, Renewable Energy.
[11] A. Pisello,et al. A study on the thermo-optical behaviour of phosphorescent coatings for passive cooling applications , 2021, E3S Web of Conferences.
[12] M. Santamouris,et al. Recent development and research priorities on cool and super cool materials to mitigate urban heat island , 2020 .
[13] D. Rybski,et al. On the influence of density and morphology on the Urban Heat Island intensity , 2020, Nature Communications.
[14] A. Pisello,et al. Phosphorescent-based pavements for counteracting urban overheating – A proof of concept , 2020, Solar Energy.
[15] H. Swart,et al. A review on the advancements in phosphor-converted light emitting diodes (pc-LEDs): Phosphor synthesis, device fabrication and characterization , 2020 .
[16] A. Pisello,et al. Thermochromic materials for indoor thermal comfort improvement: Finite difference modeling and validation in a real case-study building , 2020 .
[17] Rajashree Kotharkar,et al. Assessing urban drivers of canopy layer urban heat island: A numerical modeling approach , 2019, Landscape and Urban Planning.
[18] I. Obodovskiy,et al. Luminescence , 2019, Radiation.
[19] A. Kaczmarek,et al. Advances in tailoring luminescent rare-earth mixed inorganic materials. , 2018, Chemical Society reviews.
[20] A. Djuretic,et al. Actual energy savings when replacing high-pressure sodium with LED luminaires in street lighting , 2018, Energy.
[21] T. Benmarhnia,et al. Modification of the association between high ambient temperature and health by urban microclimate indicators: A systematic review and meta‐analysis , 2018, Environmental research.
[22] Anna Laura Pisello,et al. 2.30 Novel Building Materials , 2018 .
[23] S. Vardoulakis,et al. Assessing urban population vulnerability and environmental risks across an urban area during heatwaves - Implications for health protection. , 2018, The Science of the total environment.
[24] R. Levinson,et al. Methods and instrumentation to measure the effective solar reflectance of fluorescent cool surfaces , 2017 .
[25] M. Pinar Mengüç,et al. Materials for Radiative Cooling: A Review , 2017 .
[26] T. Kirchstetter,et al. Fluorescent cooling of objects exposed to sunlight – The ruby example , 2016 .
[27] S. J. Dhoble,et al. Persistent luminescence: An insight , 2016 .
[28] P. Ceroni. Design of Phosphorescent Organic Molecules: Old Concepts under a New Light , 2016 .
[29] Myles R. Allen,et al. Comparison of methods: Attributing the 2014 record European temperatures to human influences , 2016 .
[30] M. Rashad,et al. Tuning the structural, optical, photoluminescence and dielectric properties of Eu2+-activated mixed strontium aluminate phosphors with different rare earth co-activators , 2016, Journal of Materials Science: Materials in Electronics.
[31] Yang Li,et al. Long persistent phosphors--from fundamentals to applications. , 2016, Chemical Society reviews.
[32] Francis Aldrine A. Uy,et al. Evaluation of Strontium Aluminate in Traffic Paint Pavement Markings for Rural and Unilluminated Roads , 2015 .
[33] Xinliang Xu,et al. Influences of Urban Expansion on Urban Heat Island in Beijing during 1989-2010 , 2014 .
[34] H. Akbari,et al. Heating energy penalties of cool roofs: the effect of snow accumulation on roofs , 2014 .
[35] Jun Lin,et al. Rare earth ions doped phosphors for improving efficiencies of solar cells , 2013 .
[36] T. Oke. The energetic basis of the urban heat island , 1982 .