Superior Z → E and E → Z photoswitching dynamics of dihydrodibenzodiazocine, a bridged azobenzene, by S1(nπ*) excitation at λ = 387 and 490 nm

Literature Information

Publication Date 2010-11-12
DOI 10.1039/C0CP01148G
Impact Factor 3.676
Authors

Ron Siewertsen, Jan Boyke Schönborn, Bernd Hartke, Falk Renth, Friedrich Temps


View Original

Abstract

The ultrafast Z → E and E → Zphotoisomerisation dynamics of 5,6-dihydrodibenzo[c,g][1,2]diazocine (1), the parent compound of a class of bridged azobenzene-based photochromic molecular switches with a severely constrained eight-membered heterocyclic ring as central unit, have been studied by femtosecond time-resolved spectroscopy in n-hexane as solvent and by quantum chemical calculations. The diazocine contrasts with azobenzene (AB) in that its Z rather than E isomer is the energetically more stable form. Moreover, it stands out compared to AB for the spectrally well separated S1(nπ*) absorption bands of its two isomers. The Z isomer absorbs at around λ = 404 nm, the E form has its absorption maximum around λ = 490 nm. The observed transient spectra following S1(nπ*) photoexcitation show ultrafast excited-state decays with time constants τ1 = 70 fs for the Z and <50 fs for the E isomer reflecting very fast departures of the excited wave packets from the S1 Franck–Condon regions and τ2 = 270 fs (320 fs) related to the Z → E (resp. E → Z) isomerisations. Slower transient absorption changes on the time scale of τ3 = 5 ps are due to vibrational cooling of the reaction products. The results show that the unique steric constraints in the diazocine do not hinder, but accelerate the molecular isomerisation dynamics and increase the photoswitching efficiencies, contrary to chemical intuition. The observed isomerisation times and quantum yields are rationalised on the basis of CASPT2//CASSCF calculations by a S1/S0 conical intersection seam at a CNNC dihedral angle of ≈96° involving twisting and torsion of the central CNNC moiety. With improved photochromism, high quantum yields, short reaction times and good photostability, diazocine 1 and its derivatives constitute outstanding candidates for photoswitchable molecular tweezers and other applications.

Related Literature

Theoretical prediction of new noble-gas molecules FNgBNR (Ng = Ar, Kr, and Xe; R = H, CH3, CCH, CHCH2, F, and OH)

Jien-Lian Chen, Chang-Yu Yang, Hsiao-Jing Lin, Wei-Ping Hu

2013-04-11 Paper

DOI: 10.1039/C3CP50447F

Mechanism of one-electron oxidation of metformin in aqueous solution

C. Marchetti, R. Lazzaroni, D. Jore, M. Gardès-Albert

2013-04-22 Paper

DOI: 10.1039/C3CP50602A

pH in atomic scale simulations of electrochemical interfaces

Jan Rossmeisl, Rizwan Ahmed, Vladimir Tripković, Mårten E. Björketun

2013-05-10 Communication

DOI: 10.1039/C3CP51083B

Dependence on the structure and surface polarity of ZnS photocatalytic activities of water splitting: first-principles calculations

Hai Xiao, Xiaohong Wen, William A. Goddard III, Song Li, Gaowu Qin

2013-04-22 Paper

DOI: 10.1039/C3CP50330E

Understanding electronic and optical properties of anatase TiO2 photocatalysts co-doped with nitrogen and transition metals

Qingsen Meng, Tuo Wang, Enzuo Liu, Xinbin Ma, Jinlong Gong

2013-04-09 Paper

DOI: 10.1039/C3CP51476E

Monolayer patterning using ketone dipoles

Min Kyoung Kim, Yi Xue, Tereza Pašková, Matthew B. Zimmt

2013-04-09 Paper

DOI: 10.1039/C3CP50808K

Stretching single atom contacts at multiple subatomic step-length

Yi-Min Wei, Jing-Hong Liang, Zhao-Bin Chen, Xiao-Shun Zhou, Bing-Wei Mao, Oscar A. Oviedo, Ezequiel P. M. Leiva

2013-03-27 Paper

DOI: 10.1039/C3CP50473E

Charging a supercapacitor-like laminate with ambient moisture: from a humidity sensor to an energy harvester

Indrek Must, Urmas Johanson, Friedrich Kaasik, Inga Põldsalu, Andres Punning, Alvo Aabloo

2013-04-22 Paper

DOI: 10.1039/C3CP51526E

You might also like

Compound Q&A

How is Ethyl 4-chlorothieno[2,3-b]pyridine-5-carboxylate (CAS: 59713-58-5) typically synthesized?

Ethyl 4-chlorothieno[2,3-b]pyridine-5-carboxylate (CAS: 59713-58-5) can be synth...

59713-58-5Ethyl 4-chlorothieno...
Compound Q&A

What regulatory guidelines apply to 5-Methyl-1H-indole-3-carbaldehyde (CAS: 52562-50-2)?

5-Methyl-1H-indole-3-carbaldehyde (CAS: 52562-50-2) is subject to various regula...

52562-50-25-Methyl-1H-indole-3...
Compound Q&A

What are the physical and chemical properties of (1,3-Dimethyl-2,4-dioxo-1,2,3,4-tetrahydro-5-pyrimidinyl)boronic acid (CAS: 223418-73-3)?

(1,3-Dimethyl-2,4-dioxo-1,2,3,4-tetrahydro-5-pyrimidinyl)boronic acid is a white...

223418-73-3(1,3-Dimethyl-2,4-di...
Compound Q&A

How should waste containing Sulfocostunolide A (CAS: 1016983-51-9) be handled?

Waste containing Sulfocostunolide A (CAS: 1016983-51-9) should be handled with c...

1016983-51-9Sulfocostunolide A
Compound Q&A

What precautions should be taken when handling Murraxocin (CAS: 88478-44-8)?

When handling Murraxocin (CAS: 88478-44-8), ensure proper personal protective eq...

88478-44-8Murraxocin
Compound Q&A

What are the physical and chemical properties of Formvar (CAS: 63148-64-1)?

Formvar (CAS: 63148-64-1) is an alkyd resin characterized by a high molecular we...

63148-64-1Formvar(R)
Compound Q&A

Is (S)-4-benzyl-2-((benzyloxy)methyl)morpholine (CAS: 205242-66-6) safe?

(S)-4-benzyl-2-((benzyloxy)methyl)morpholine is generally safe when handled with...

205242-66-6(S)-4-benzyl-2-((ben...
Compound Q&A

What industries use Methyl 1-(5-bromo-2-pyrimidinyl)cyclopropanecarboxylate (CAS: 1447607-69-3)?

Methyl 1-(5-bromo-2-pyrimidinyl)cyclopropanecarboxylate (CAS: 1447607-69-3) is p...

1447607-69-3Methyl 1-(5-bromo-2-...
Compound Q&A

Is 2-Methyl-1-phenyl-1-propanamine hydrochloride (CAS: 24290-47-9) safe?

2-Methyl-1-phenyl-1-propanamine hydrochloride (CAS: 24290-47-9) is generally con...

24290-47-92-Methyl-1-phenyl-1-...
Compound Q&A

How is 3-(4-Bromophenyl)-2-methylpropanoic acid (CAS: 66735-01-1) typically synthesized?

3-(4-Bromophenyl)-2-methylpropanoic acid is synthesized through a multi-step pro...

66735-01-13-(4-Bromophenyl)-2-...

Source Journal

Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics
CiteScore: 5.5
Self-citation Rate: 10.3%
Articles per Year: 3036

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.

Recommended Compounds

Recommended Suppliers

Disclaimer
This page provides academic journal information for reference and research purposes only. We are not affiliated with any journal publishers and do not handle publication submissions. For publication-related inquiries, please contact the respective journal publishers directly.
If you notice any inaccuracies in the information displayed, please contact us at support@chemtradehub.com. We will promptly review and address your concerns.