A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Standard

A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries. / Gertsen, Anders Skovbo; Olsen, Stine Tetzschner; Broman, Søren Lindbæk; Nielsen, Mogens Brøndsted; Mikkelsen, Kurt Valentin.

I: The Journal of Physical Chemistry Part C, Bind 121, Nr. 1, 2017, s. 195-201.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Gertsen, AS, Olsen, ST, Broman, SL, Nielsen, MB & Mikkelsen, KV 2017, 'A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries', The Journal of Physical Chemistry Part C, bind 121, nr. 1, s. 195-201. https://doi.org/10.1021/acs.jpcc.6b10786

APA

Gertsen, A. S., Olsen, S. T., Broman, S. L., Nielsen, M. B., & Mikkelsen, K. V. (2017). A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries. The Journal of Physical Chemistry Part C, 121(1), 195-201. https://doi.org/10.1021/acs.jpcc.6b10786

Vancouver

Gertsen AS, Olsen ST, Broman SL, Nielsen MB, Mikkelsen KV. A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries. The Journal of Physical Chemistry Part C. 2017;121(1):195-201. https://doi.org/10.1021/acs.jpcc.6b10786

Author

Gertsen, Anders Skovbo ; Olsen, Stine Tetzschner ; Broman, Søren Lindbæk ; Nielsen, Mogens Brøndsted ; Mikkelsen, Kurt Valentin. / A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries. I: The Journal of Physical Chemistry Part C. 2017 ; Bind 121, Nr. 1. s. 195-201.

Bibtex

@article{b7b8fa16b2924a05aa66e3d0b0418545,
title = "A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries",
abstract = "Development of photochromic molecules for solar energy storage has two major challenges: (i) to store a sufficient amount of energy in the metastable isomer and (ii) to control the energy-releasing step, i.e., setting it on hold until the energy is needed. Combining the dihydroazulene/vinylheptafulvene (DHA/VHF) photo-/thermoswitch with the dithienylethene/dihydrothienobenzothiophene (DTE/DHB) photoswitch could potentially meet these challenges. The combined multimode switch is studied by density functional theory in order to predict its energy storage properties and spectral behavior in various solvents before discussing its suitability for use in solar heat batteries. An energy storage capacity of 0.17 MJ/kg is calculated which corresponds to a specific energy of 46 Wh/kg—slightly larger than that of a common lead–acid car battery (∼40 Wh/kg) but still only one-fourth of lithium-ion batteries (100–250 Wh/kg). The usual trend for 1,8a-dihydroazulene-1,1-dicarbonitrile and its derivatives is for their energy storage capacities to decrease dramatically as the solvent polarity is increased, but it is found that solvent effects are not as significant for the combined DHA–DTE system. Furthermore, the spectral data indeed imply a possibility of controlling the back-reaction from the energy-rich metastable isomer by light stimulus, thus enabling one to release the stored energy upon request. This work thereby represents important progress toward efficient long-time solar energy storage in photochromic closed-cycle molecular systems",
author = "Gertsen, {Anders Skovbo} and Olsen, {Stine Tetzschner} and Broman, {S{\o}ren Lindb{\ae}k} and Nielsen, {Mogens Br{\o}ndsted} and Mikkelsen, {Kurt Valentin}",
year = "2017",
doi = "10.1021/acs.jpcc.6b10786",
language = "English",
volume = "121",
pages = "195--201",
journal = "The Journal of Physical Chemistry Part C",
issn = "1932-7447",
publisher = "American Chemical Society",
number = "1",

}

RIS

TY - JOUR

T1 - A DFT Study of Multimode Switching in a Combined DHA/VHF-DTE/DHB System for Use in Solar Heat Batteries

AU - Gertsen, Anders Skovbo

AU - Olsen, Stine Tetzschner

AU - Broman, Søren Lindbæk

AU - Nielsen, Mogens Brøndsted

AU - Mikkelsen, Kurt Valentin

PY - 2017

Y1 - 2017

N2 - Development of photochromic molecules for solar energy storage has two major challenges: (i) to store a sufficient amount of energy in the metastable isomer and (ii) to control the energy-releasing step, i.e., setting it on hold until the energy is needed. Combining the dihydroazulene/vinylheptafulvene (DHA/VHF) photo-/thermoswitch with the dithienylethene/dihydrothienobenzothiophene (DTE/DHB) photoswitch could potentially meet these challenges. The combined multimode switch is studied by density functional theory in order to predict its energy storage properties and spectral behavior in various solvents before discussing its suitability for use in solar heat batteries. An energy storage capacity of 0.17 MJ/kg is calculated which corresponds to a specific energy of 46 Wh/kg—slightly larger than that of a common lead–acid car battery (∼40 Wh/kg) but still only one-fourth of lithium-ion batteries (100–250 Wh/kg). The usual trend for 1,8a-dihydroazulene-1,1-dicarbonitrile and its derivatives is for their energy storage capacities to decrease dramatically as the solvent polarity is increased, but it is found that solvent effects are not as significant for the combined DHA–DTE system. Furthermore, the spectral data indeed imply a possibility of controlling the back-reaction from the energy-rich metastable isomer by light stimulus, thus enabling one to release the stored energy upon request. This work thereby represents important progress toward efficient long-time solar energy storage in photochromic closed-cycle molecular systems

AB - Development of photochromic molecules for solar energy storage has two major challenges: (i) to store a sufficient amount of energy in the metastable isomer and (ii) to control the energy-releasing step, i.e., setting it on hold until the energy is needed. Combining the dihydroazulene/vinylheptafulvene (DHA/VHF) photo-/thermoswitch with the dithienylethene/dihydrothienobenzothiophene (DTE/DHB) photoswitch could potentially meet these challenges. The combined multimode switch is studied by density functional theory in order to predict its energy storage properties and spectral behavior in various solvents before discussing its suitability for use in solar heat batteries. An energy storage capacity of 0.17 MJ/kg is calculated which corresponds to a specific energy of 46 Wh/kg—slightly larger than that of a common lead–acid car battery (∼40 Wh/kg) but still only one-fourth of lithium-ion batteries (100–250 Wh/kg). The usual trend for 1,8a-dihydroazulene-1,1-dicarbonitrile and its derivatives is for their energy storage capacities to decrease dramatically as the solvent polarity is increased, but it is found that solvent effects are not as significant for the combined DHA–DTE system. Furthermore, the spectral data indeed imply a possibility of controlling the back-reaction from the energy-rich metastable isomer by light stimulus, thus enabling one to release the stored energy upon request. This work thereby represents important progress toward efficient long-time solar energy storage in photochromic closed-cycle molecular systems

U2 - 10.1021/acs.jpcc.6b10786

DO - 10.1021/acs.jpcc.6b10786

M3 - Journal article

VL - 121

SP - 195

EP - 201

JO - The Journal of Physical Chemistry Part C

JF - The Journal of Physical Chemistry Part C

SN - 1932-7447

IS - 1

ER -

ID: 176366849