Efficient Near-Infrared Luminescence of Self-Assembled Platinum(II) Complexes: From Fundamentals to Applications
Conspectus Designing bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging, medical therapy, optical communication, and night-vision devices. However, polyatomic organic and organometallic molecules with energy gaps cl...
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Published in | Accounts of chemical research Vol. 56; no. 6; pp. 689 - 699 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
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American Chemical Society
21.03.2023
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Abstract | Conspectus Designing bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging, medical therapy, optical communication, and night-vision devices. However, polyatomic organic and organometallic molecules with energy gaps close to the deep red and NIR regime are subject to dominant nonradiative internal conversion (IC) processes, which drastically reduces the emission intensity and exciton diffusion length of organic materials and hence hampers the optoelectronic performances. To suppress nonradiative IC rates, we suggested two complementary approaches to solve the issues: exciton delocalization and molecular deuteration. First, exciton delocalization efficiently suppresses the molecular reorganization energy through partitioning to all aggregated molecules. According to the IC theory together with the effect of exciton delocalization, the simulated nonradiative rates with the energy gap ΔE = 104 cm–1 decrease by around 104 fold when the exciton delocalization length equals 5 (promoting vibronic frequency ω l = 1500 cm–1). Second, molecular deuterations reduce Franck–Condon vibrational overlaps and vibrational frequencies of promoting modes, which decreases IC rates by 1 order of magnitude in comparison to the rates of nondeuterated molecules under ΔE of 104 cm–1. Although deuteration of molecules has long been attempted to increase emission intensity, the results have been mixed. Here, we provide a robust derivation of the IC theory to demonstrate its validity, especially to emission in the NIR region. The concepts are experimentally verified by the strategic design and synthesis of a class of square-planar Pt(II) complexes, which form crystalline aggregates in vapor deposited thin films. The packing geometries are well characterized by the grazing angle X-ray diffraction (GIXD), showing domino-like packing arrangements with the short ππ separation of 3.4–3.7 Å. Upon photoexcitation, such closely packed assemblies exhibit intense NIR emission maximized in the 740–970 nm region through metal–metal-to-ligand charge transfer (MMLCT) transition with unprecedented photoluminescent quantum yield (PLQY) of 8–82%. To validate the existence of exciton delocalization, we applied time-resolved step-scan Fourier transform UV–vis spectroscopy to probe the exciton delocalization length of Pt(II) aggregates, which is 5–9 molecules (2.1–4.5 nm) assuming that excitons mainly delocalized along the direction of ππ stacking. According to the dependence of delocalization length vs simulated IC rates, we verify that the observed delocalization lengths contribute to the high NIR PLQY of the aggregated Pt(II) complexes. To probe the isotope effect, both partially and completely deuterated Pt(II) complexes were synthesized. For the case of the 970 nm Pt(II) emitter, the vapor deposited films of per-deuterated Pt(II) complexes exhibit the same emission peak as that of the nondeuterated one, whereas PLQY increases ∼50%. To put the fundamental studies into practice, organic light-emitting diodes (OLEDs) were fabricated with a variety of NIR Pt(II) complexes as the emitting layer, showing the outstanding external quantum efficiencies (EQEs) of 2–25% and the remarkable radiances 10–40 W sr–1 m–2 at 740–1002 nm. The prominent device performances not only successfully prove our designed concept but also reach a new milestone for highly efficient NIR OLED devices. This Account thus summarizes our approaches about how to boost the efficiency of the NIR emission of organic molecules from an in-depth fundamental basis, i.e., molecular design, photophysical characterization, and device fabrication. The concept of the exciton delocalization and molecular deuteration may also be applicable to a single molecular system to achieve efficient NIR radiance, which is worth further investigation in the future. |
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AbstractList | Conspectus Designing bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging, medical therapy, optical communication, and night-vision devices. However, polyatomic organic and organometallic molecules with energy gaps close to the deep red and NIR regime are subject to dominant nonradiative internal conversion (IC) processes, which drastically reduces the emission intensity and exciton diffusion length of organic materials and hence hampers the optoelectronic performances. To suppress nonradiative IC rates, we suggested two complementary approaches to solve the issues: exciton delocalization and molecular deuteration. First, exciton delocalization efficiently suppresses the molecular reorganization energy through partitioning to all aggregated molecules. According to the IC theory together with the effect of exciton delocalization, the simulated nonradiative rates with the energy gap ΔE = 104 cm–1 decrease by around 104 fold when the exciton delocalization length equals 5 (promoting vibronic frequency ω l = 1500 cm–1). Second, molecular deuterations reduce Franck–Condon vibrational overlaps and vibrational frequencies of promoting modes, which decreases IC rates by 1 order of magnitude in comparison to the rates of nondeuterated molecules under ΔE of 104 cm–1. Although deuteration of molecules has long been attempted to increase emission intensity, the results have been mixed. Here, we provide a robust derivation of the IC theory to demonstrate its validity, especially to emission in the NIR region. The concepts are experimentally verified by the strategic design and synthesis of a class of square-planar Pt(II) complexes, which form crystalline aggregates in vapor deposited thin films. The packing geometries are well characterized by the grazing angle X-ray diffraction (GIXD), showing domino-like packing arrangements with the short ππ separation of 3.4–3.7 Å. Upon photoexcitation, such closely packed assemblies exhibit intense NIR emission maximized in the 740–970 nm region through metal–metal-to-ligand charge transfer (MMLCT) transition with unprecedented photoluminescent quantum yield (PLQY) of 8–82%. To validate the existence of exciton delocalization, we applied time-resolved step-scan Fourier transform UV–vis spectroscopy to probe the exciton delocalization length of Pt(II) aggregates, which is 5–9 molecules (2.1–4.5 nm) assuming that excitons mainly delocalized along the direction of ππ stacking. According to the dependence of delocalization length vs simulated IC rates, we verify that the observed delocalization lengths contribute to the high NIR PLQY of the aggregated Pt(II) complexes. To probe the isotope effect, both partially and completely deuterated Pt(II) complexes were synthesized. For the case of the 970 nm Pt(II) emitter, the vapor deposited films of per-deuterated Pt(II) complexes exhibit the same emission peak as that of the nondeuterated one, whereas PLQY increases ∼50%. To put the fundamental studies into practice, organic light-emitting diodes (OLEDs) were fabricated with a variety of NIR Pt(II) complexes as the emitting layer, showing the outstanding external quantum efficiencies (EQEs) of 2–25% and the remarkable radiances 10–40 W sr–1 m–2 at 740–1002 nm. The prominent device performances not only successfully prove our designed concept but also reach a new milestone for highly efficient NIR OLED devices. This Account thus summarizes our approaches about how to boost the efficiency of the NIR emission of organic molecules from an in-depth fundamental basis, i.e., molecular design, photophysical characterization, and device fabrication. The concept of the exciton delocalization and molecular deuteration may also be applicable to a single molecular system to achieve efficient NIR radiance, which is worth further investigation in the future. ConspectusDesigning bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging, medical therapy, optical communication, and night-vision devices. However, polyatomic organic and organometallic molecules with energy gaps close to the deep red and NIR regime are subject to dominant nonradiative internal conversion (IC) processes, which drastically reduces the emission intensity and exciton diffusion length of organic materials and hence hampers the optoelectronic performances. To suppress nonradiative IC rates, we suggested two complementary approaches to solve the issues: exciton delocalization and molecular deuteration. First, exciton delocalization efficiently suppresses the molecular reorganization energy through partitioning to all aggregated molecules. According to the IC theory together with the effect of exciton delocalization, the simulated nonradiative rates with the energy gap Δ = 10 cm decrease by around 10 fold when the exciton delocalization length equals 5 (promoting vibronic frequency = 1500 cm ). Second, molecular deuterations reduce Franck-Condon vibrational overlaps and vibrational frequencies of promoting modes, which decreases IC rates by 1 order of magnitude in comparison to the rates of nondeuterated molecules under Δ of 10 cm . Although deuteration of molecules has long been attempted to increase emission intensity, the results have been mixed. Here, we provide a robust derivation of the IC theory to demonstrate its validity, especially to emission in the NIR region.The concepts are experimentally verified by the strategic design and synthesis of a class of square-planar Pt(II) complexes, which form crystalline aggregates in vapor deposited thin films. The packing geometries are well characterized by the grazing angle X-ray diffraction (GIXD), showing domino-like packing arrangements with the short ππ separation of 3.4-3.7 Å. Upon photoexcitation, such closely packed assemblies exhibit intense NIR emission maximized in the 740-970 nm region through metal-metal-to-ligand charge transfer (MMLCT) transition with unprecedented photoluminescent quantum yield (PLQY) of 8-82%. To validate the existence of exciton delocalization, we applied time-resolved step-scan Fourier transform UV-vis spectroscopy to probe the exciton delocalization length of Pt(II) aggregates, which is 5-9 molecules (2.1-4.5 nm) assuming that excitons mainly delocalized along the direction of ππ stacking. According to the dependence of delocalization length vs simulated IC rates, we verify that the observed delocalization lengths contribute to the high NIR PLQY of the aggregated Pt(II) complexes. To probe the isotope effect, both partially and completely deuterated Pt(II) complexes were synthesized. For the case of the 970 nm Pt(II) emitter, the vapor deposited films of per-deuterated Pt(II) complexes exhibit the same emission peak as that of the nondeuterated one, whereas PLQY increases ∼50%. To put the fundamental studies into practice, organic light-emitting diodes (OLEDs) were fabricated with a variety of NIR Pt(II) complexes as the emitting layer, showing the outstanding external quantum efficiencies (EQEs) of 2-25% and the remarkable radiances 10-40 W sr m at 740-1002 nm. The prominent device performances not only successfully prove our designed concept but also reach a new milestone for highly efficient NIR OLED devices.This Account thus summarizes our approaches about how to boost the efficiency of the NIR emission of organic molecules from an in-depth fundamental basis, i.e., molecular design, photophysical characterization, and device fabrication. The concept of the exciton delocalization and molecular deuteration may also be applicable to a single molecular system to achieve efficient NIR radiance, which is worth further investigation in the future. ConspectusDesigning bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging, medical therapy, optical communication, and night-vision devices. However, polyatomic organic and organometallic molecules with energy gaps close to the deep red and NIR regime are subject to dominant nonradiative internal conversion (IC) processes, which drastically reduces the emission intensity and exciton diffusion length of organic materials and hence hampers the optoelectronic performances. To suppress nonradiative IC rates, we suggested two complementary approaches to solve the issues: exciton delocalization and molecular deuteration. First, exciton delocalization efficiently suppresses the molecular reorganization energy through partitioning to all aggregated molecules. According to the IC theory together with the effect of exciton delocalization, the simulated nonradiative rates with the energy gap ΔE = 104 cm-1 decrease by around 104 fold when the exciton delocalization length equals 5 (promoting vibronic frequency ωl = 1500 cm-1). Second, molecular deuterations reduce Franck-Condon vibrational overlaps and vibrational frequencies of promoting modes, which decreases IC rates by 1 order of magnitude in comparison to the rates of nondeuterated molecules under ΔE of 104 cm-1. Although deuteration of molecules has long been attempted to increase emission intensity, the results have been mixed. Here, we provide a robust derivation of the IC theory to demonstrate its validity, especially to emission in the NIR region.The concepts are experimentally verified by the strategic design and synthesis of a class of square-planar Pt(II) complexes, which form crystalline aggregates in vapor deposited thin films. The packing geometries are well characterized by the grazing angle X-ray diffraction (GIXD), showing domino-like packing arrangements with the short ππ separation of 3.4-3.7 Å. Upon photoexcitation, such closely packed assemblies exhibit intense NIR emission maximized in the 740-970 nm region through metal-metal-to-ligand charge transfer (MMLCT) transition with unprecedented photoluminescent quantum yield (PLQY) of 8-82%. To validate the existence of exciton delocalization, we applied time-resolved step-scan Fourier transform UV-vis spectroscopy to probe the exciton delocalization length of Pt(II) aggregates, which is 5-9 molecules (2.1-4.5 nm) assuming that excitons mainly delocalized along the direction of ππ stacking. According to the dependence of delocalization length vs simulated IC rates, we verify that the observed delocalization lengths contribute to the high NIR PLQY of the aggregated Pt(II) complexes. To probe the isotope effect, both partially and completely deuterated Pt(II) complexes were synthesized. For the case of the 970 nm Pt(II) emitter, the vapor deposited films of per-deuterated Pt(II) complexes exhibit the same emission peak as that of the nondeuterated one, whereas PLQY increases ∼50%. To put the fundamental studies into practice, organic light-emitting diodes (OLEDs) were fabricated with a variety of NIR Pt(II) complexes as the emitting layer, showing the outstanding external quantum efficiencies (EQEs) of 2-25% and the remarkable radiances 10-40 W sr-1 m-2 at 740-1002 nm. The prominent device performances not only successfully prove our designed concept but also reach a new milestone for highly efficient NIR OLED devices.This Account thus summarizes our approaches about how to boost the efficiency of the NIR emission of organic molecules from an in-depth fundamental basis, i.e., molecular design, photophysical characterization, and device fabrication. The concept of the exciton delocalization and molecular deuteration may also be applicable to a single molecular system to achieve efficient NIR radiance, which is worth further investigation in the future.ConspectusDesigning bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging, medical therapy, optical communication, and night-vision devices. However, polyatomic organic and organometallic molecules with energy gaps close to the deep red and NIR regime are subject to dominant nonradiative internal conversion (IC) processes, which drastically reduces the emission intensity and exciton diffusion length of organic materials and hence hampers the optoelectronic performances. To suppress nonradiative IC rates, we suggested two complementary approaches to solve the issues: exciton delocalization and molecular deuteration. First, exciton delocalization efficiently suppresses the molecular reorganization energy through partitioning to all aggregated molecules. According to the IC theory together with the effect of exciton delocalization, the simulated nonradiative rates with the energy gap ΔE = 104 cm-1 decrease by around 104 fold when the exciton delocalization length equals 5 (promoting vibronic frequency ωl = 1500 cm-1). Second, molecular deuterations reduce Franck-Condon vibrational overlaps and vibrational frequencies of promoting modes, which decreases IC rates by 1 order of magnitude in comparison to the rates of nondeuterated molecules under ΔE of 104 cm-1. Although deuteration of molecules has long been attempted to increase emission intensity, the results have been mixed. Here, we provide a robust derivation of the IC theory to demonstrate its validity, especially to emission in the NIR region.The concepts are experimentally verified by the strategic design and synthesis of a class of square-planar Pt(II) complexes, which form crystalline aggregates in vapor deposited thin films. The packing geometries are well characterized by the grazing angle X-ray diffraction (GIXD), showing domino-like packing arrangements with the short ππ separation of 3.4-3.7 Å. Upon photoexcitation, such closely packed assemblies exhibit intense NIR emission maximized in the 740-970 nm region through metal-metal-to-ligand charge transfer (MMLCT) transition with unprecedented photoluminescent quantum yield (PLQY) of 8-82%. To validate the existence of exciton delocalization, we applied time-resolved step-scan Fourier transform UV-vis spectroscopy to probe the exciton delocalization length of Pt(II) aggregates, which is 5-9 molecules (2.1-4.5 nm) assuming that excitons mainly delocalized along the direction of ππ stacking. According to the dependence of delocalization length vs simulated IC rates, we verify that the observed delocalization lengths contribute to the high NIR PLQY of the aggregated Pt(II) complexes. To probe the isotope effect, both partially and completely deuterated Pt(II) complexes were synthesized. For the case of the 970 nm Pt(II) emitter, the vapor deposited films of per-deuterated Pt(II) complexes exhibit the same emission peak as that of the nondeuterated one, whereas PLQY increases ∼50%. To put the fundamental studies into practice, organic light-emitting diodes (OLEDs) were fabricated with a variety of NIR Pt(II) complexes as the emitting layer, showing the outstanding external quantum efficiencies (EQEs) of 2-25% and the remarkable radiances 10-40 W sr-1 m-2 at 740-1002 nm. The prominent device performances not only successfully prove our designed concept but also reach a new milestone for highly efficient NIR OLED devices.This Account thus summarizes our approaches about how to boost the efficiency of the NIR emission of organic molecules from an in-depth fundamental basis, i.e., molecular design, photophysical characterization, and device fabrication. The concept of the exciton delocalization and molecular deuteration may also be applicable to a single molecular system to achieve efficient NIR radiance, which is worth further investigation in the future. |
Author | Kuo, Kai-Hua Chi, Yun Wei, Yu-Chen Chou, Pi-Tai |
AuthorAffiliation | Department of Chemistry City University of Hong Kong Department of Materials Science and Engineering, Department of Chemistry, and Center of Super-Diamond and Advanced Films |
AuthorAffiliation_xml | – name: Department of Chemistry – name: Department of Materials Science and Engineering, Department of Chemistry, and Center of Super-Diamond and Advanced Films – name: City University of Hong Kong |
Author_xml | – sequence: 1 givenname: Yu-Chen orcidid: 0000-0003-4120-0685 surname: Wei fullname: Wei, Yu-Chen organization: Department of Chemistry – sequence: 2 givenname: Kai-Hua surname: Kuo fullname: Kuo, Kai-Hua organization: Department of Chemistry – sequence: 3 givenname: Yun orcidid: 0000-0002-8441-3974 surname: Chi fullname: Chi, Yun email: yunchi@cityu.edu.hk organization: City University of Hong Kong – sequence: 4 givenname: Pi-Tai orcidid: 0000-0002-8925-7747 surname: Chou fullname: Chou, Pi-Tai email: chop@ntu.edu.tw organization: Department of Chemistry |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/36882976$$D View this record in MEDLINE/PubMed |
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Cites_doi | 10.1002/smsc.202000057 10.1038/ncomms4180 10.1002/adfm.201807623 10.1039/D2SC01851A 10.1021/acs.chemrev.7b00581 10.1016/0009-2614(68)80032-6 10.1038/s41377-020-00456-8 10.1039/C7CP05009G 10.1002/adma.200305228 10.1063/1.3559454 10.1063/1.1840685 10.1080/00268977000100171 10.1021/jacs.0c02122 10.1039/C5CP03299G 10.1021/jp992429m 10.1039/C4CS00123K 10.1002/adfm.202208082 10.1021/acs.chemrev.1c00078 10.1002/adfm.202002173 10.1063/1.1669507 10.1021/j100061a006 10.1021/acs.jpcc.9b00224 10.1016/0009-2614(90)85450-Q 10.1063/1.1733991 10.1021/jp953639b 10.1038/s41566-022-01079-8 10.1039/C9TC01585J 10.1063/1.469393 10.1021/jp104752k 10.1039/D0CP04709K 10.1016/0009-2614(72)80224-0 10.1002/adfm.201900923 10.1038/s41566-020-0653-6 10.1002/adfm.202002494 10.1039/df9500900014 10.1063/1.1733823 10.1021/acs.jpca.0c10683 10.1021/ja407515w 10.1021/ic00201a014 10.1016/j.cej.2021.132822 10.1039/C6TB01465H 10.1038/s41566-017-0087-y 10.1021/acs.jpcc.0c06977 10.1021/jp102901u 10.1038/s41467-020-17867-1 10.1002/anie.201504894 10.1021/acs.jpcc.8b07197 10.1038/nphoton.2016.230 10.1002/anie.201711350 10.1002/adma.201504451 10.1063/1.1677761 10.1021/acs.jpclett.0c03171 10.1002/adma.201900690 10.1038/nature11687 10.1021/nl2008778 10.1021/j100017a006 10.1093/oso/9780195129632.001.0001 10.1016/S0009-2614(02)01217-4 10.1063/1.3691105 10.1063/1.1726531 10.1515/nanoph-2017-0039 10.1021/ar900233v 10.1016/S0010-8545(01)00366-6 10.1016/0009-2614(81)80389-2 10.1016/j.cplett.2013.10.048 10.1063/1.121086 10.1039/D2SC02201J 10.1021/jp3086717 10.1021/ja8040493 10.1016/j.cplett.2010.03.084 10.1021/acs.jpclett.0c03805 10.1063/1.1677706 10.1002/adom.202000154 10.1021/j100407a046 10.1021/acs.chemmater.7b00518 |
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References | ref9/cit9 ref45/cit45 ref3/cit3 ref27/cit27 ref63/cit63 ref56/cit56 ref16/cit16 ref52/cit52 ref8/cit8 ref31/cit31 ref59/cit59 ref2/cit2 ref34/cit34 ref71/cit71 ref37/cit37 ref20/cit20 ref48/cit48 ref60/cit60 ref74/cit74 ref17/cit17 ref10/cit10 ref53/cit53 ref19/cit19 ref21/cit21 ref42/cit42 ref46/cit46 ref49/cit49 ref13/cit13 Pope M. (ref35/cit35) 1999 ref61/cit61 ref75/cit75 ref67/cit67 ref24/cit24 ref38/cit38 ref50/cit50 ref64/cit64 ref54/cit54 ref6/cit6 ref36/cit36 ref18/cit18 ref65/cit65 ref11/cit11 ref25/cit25 ref29/cit29 ref72/cit72 ref76/cit76 ref32/cit32 ref39/cit39 ref14/cit14 ref57/cit57 ref5/cit5 ref51/cit51 ref43/cit43 ref28/cit28 ref40/cit40 ref68/cit68 ref26/cit26 ref55/cit55 ref73/cit73 ref69/cit69 ref12/cit12 ref15/cit15 ref62/cit62 ref66/cit66 ref41/cit41 Turro N. J. (ref23/cit23) 2010 ref58/cit58 ref22/cit22 ref33/cit33 ref4/cit4 ref30/cit30 ref47/cit47 ref1/cit1 ref44/cit44 ref70/cit70 ref7/cit7 |
References_xml | – ident: ref62/cit62 doi: 10.1002/smsc.202000057 – ident: ref55/cit55 doi: 10.1038/ncomms4180 – ident: ref6/cit6 doi: 10.1002/adfm.201807623 – ident: ref76/cit76 doi: 10.1039/D2SC01851A – ident: ref21/cit21 doi: 10.1021/acs.chemrev.7b00581 – ident: ref52/cit52 doi: 10.1016/0009-2614(68)80032-6 – ident: ref44/cit44 doi: 10.1038/s41377-020-00456-8 – ident: ref26/cit26 doi: 10.1039/C7CP05009G – ident: ref41/cit41 doi: 10.1002/adma.200305228 – ident: ref65/cit65 doi: 10.1063/1.3559454 – ident: ref67/cit67 doi: 10.1063/1.1840685 – ident: ref5/cit5 doi: 10.1080/00268977000100171 – ident: ref10/cit10 doi: 10.1021/jacs.0c02122 – ident: ref25/cit25 doi: 10.1039/C5CP03299G – ident: ref64/cit64 doi: 10.1021/jp992429m – ident: ref74/cit74 doi: 10.1039/C4CS00123K – ident: ref7/cit7 doi: 10.1002/adfm.202208082 – ident: ref71/cit71 doi: 10.1021/acs.chemrev.1c00078 – ident: ref2/cit2 doi: 10.1002/adfm.202002173 – ident: ref51/cit51 doi: 10.1063/1.1669507 – ident: ref24/cit24 doi: 10.1021/j100061a006 – ident: ref27/cit27 doi: 10.1021/acs.jpcc.9b00224 – ident: ref48/cit48 doi: 10.1016/0009-2614(90)85450-Q – ident: ref32/cit32 doi: 10.1063/1.1733991 – ident: ref31/cit31 doi: 10.1021/jp953639b – ident: ref4/cit4 doi: 10.1038/s41566-022-01079-8 – ident: ref45/cit45 doi: 10.1039/C9TC01585J – ident: ref33/cit33 doi: 10.1063/1.469393 – ident: ref20/cit20 doi: 10.1021/jp104752k – ident: ref75/cit75 doi: 10.1039/D0CP04709K – ident: ref73/cit73 doi: 10.1016/0009-2614(72)80224-0 – ident: ref18/cit18 doi: 10.1002/adfm.201900923 – ident: ref3/cit3 doi: 10.1038/s41566-020-0653-6 – ident: ref46/cit46 doi: 10.1002/adfm.202002494 – ident: ref22/cit22 doi: 10.1039/df9500900014 – ident: ref66/cit66 doi: 10.1063/1.1733823 – ident: ref56/cit56 doi: 10.1021/acs.jpca.0c10683 – ident: ref40/cit40 doi: 10.1021/ja407515w – ident: ref47/cit47 doi: 10.1021/ic00201a014 – ident: ref57/cit57 doi: 10.1016/j.cej.2021.132822 – ident: ref30/cit30 doi: 10.1039/C6TB01465H – ident: ref14/cit14 doi: 10.1038/s41566-017-0087-y – ident: ref34/cit34 doi: 10.1021/acs.jpcc.0c06977 – ident: ref42/cit42 doi: 10.1021/jp102901u – ident: ref70/cit70 doi: 10.1038/s41467-020-17867-1 – ident: ref11/cit11 doi: 10.1002/anie.201504894 – volume-title: Modern Molecular Photochemistry of Organic Molecules year: 2010 ident: ref23/cit23 – ident: ref36/cit36 doi: 10.1021/acs.jpcc.8b07197 – ident: ref1/cit1 doi: 10.1038/nphoton.2016.230 – ident: ref12/cit12 doi: 10.1002/anie.201711350 – ident: ref17/cit17 doi: 10.1002/adma.201504451 – ident: ref54/cit54 doi: 10.1063/1.1677761 – ident: ref69/cit69 doi: 10.1021/acs.jpclett.0c03171 – ident: ref68/cit68 doi: 10.1002/adma.201900690 – ident: ref15/cit15 doi: 10.1038/nature11687 – ident: ref43/cit43 doi: 10.1021/nl2008778 – ident: ref60/cit60 doi: 10.1021/j100017a006 – volume-title: Electronic Processes in Organic Crystals and Polymers year: 1999 ident: ref35/cit35 doi: 10.1093/oso/9780195129632.001.0001 – ident: ref38/cit38 doi: 10.1016/S0009-2614(02)01217-4 – ident: ref61/cit61 doi: 10.1063/1.3691105 – ident: ref63/cit63 doi: 10.1063/1.1726531 – ident: ref9/cit9 doi: 10.1515/nanoph-2017-0039 – ident: ref19/cit19 doi: 10.1021/ar900233v – ident: ref49/cit49 doi: 10.1016/S0010-8545(01)00366-6 – ident: ref58/cit58 doi: 10.1016/0009-2614(81)80389-2 – ident: ref13/cit13 doi: 10.1016/j.cplett.2013.10.048 – ident: ref37/cit37 doi: 10.1063/1.121086 – ident: ref8/cit8 doi: 10.1039/D2SC02201J – ident: ref39/cit39 doi: 10.1021/jp3086717 – ident: ref28/cit28 doi: 10.1021/ja8040493 – ident: ref50/cit50 doi: 10.1016/j.cplett.2010.03.084 – ident: ref72/cit72 doi: 10.1021/acs.jpclett.0c03805 – ident: ref53/cit53 doi: 10.1063/1.1677706 – ident: ref29/cit29 doi: 10.1002/adom.202000154 – ident: ref59/cit59 doi: 10.1021/j100407a046 – ident: ref16/cit16 doi: 10.1021/acs.chemmater.7b00518 |
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Snippet | Conspectus Designing bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging,... ConspectusDesigning bright and efficient near-infrared (NIR) emitters has drawn much attention due to numerous applications ranging from biological imaging,... |
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Title | Efficient Near-Infrared Luminescence of Self-Assembled Platinum(II) Complexes: From Fundamentals to Applications |
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