Thermochromic Halide Perovskite Windows with Ideal Transition Temperatures

Author:

Rosales Bryan A.1,Kim Janghyun1,Wheeler Vincent M.2,Crowe Laura E.3,Prince Kevin J.14,Mirzokarimov Mirzo1,Daligault Tom1,Duell Adam1,Wolden Colin A.14,Schelhas Laura T.1,Wheeler Lance M.1ORCID

Affiliation:

1. National Renewable Energy Laboratory 15013 Denver West Parkway Golden CO 80401 USA

2. 2qV Technology Company University of Wisconsin—Stout 712 Broadway Street South Menomonie Wisconsin 54751 USA

3. Swift Solar 981 Bing St San Carlos CA 94070 USA

4. Department Chemical and Biological Engineering Colorado School of Mines Golden CO 80401 USA

Abstract

AbstractUrban centers across the globe are responsible for a significant fraction of energy consumption and CO2 emission. As urban centers continue to grow, the popularity of glass as cladding material in urban buildings is an alarming trend. Dynamic windows reduce heating and cooling loads in buildings by passive heating in cold seasons and mitigating solar heat gain in hot seasons. Here, reduced energy consumption in highly glazed buildings in a mesoscopic building energy model is demonstrated when thermochromic windows are employed. Savings are realized across eight disparate climate zones of the United States. The model is used to determine ideal critical transition temperatures of 20–27.5 °C for thermochromic windows based on metal halide perovskite materials. Ideal transition temperatures are realized experimentally in composite metal halide perovskite films composed of perovskite crystals and an adjacent reservoir phase. The transition temperature is controlled by cointercalating methanol, instead of water, with methylammonium iodide and tailoring the hydrogen‐bonding chemistry of the reservoir phase. Thermochromic windows based on metal halide perovskites represent a clear opportunity to mitigate the effects of energy‐hungry buildings.

Funder

U.S. Department of Energy

Building Technologies Office

Office of Energy Efficiency and Renewable Energy

Basic Energy Sciences

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

Reference42 articles.

1. Tracking Buildings 2020 https://www.iea.org/reports/tracking-buildings-2020(accessed: September2021).

2. Solar power windows: Connecting scientific advances to market signals

3. Thermochromic smart window technologies for building application: A review

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