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step decrease » sizes decrease (Expand Search), teer decrease (Expand Search)
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5 step » _ step (Expand Search), a step (Expand Search), 2 step (Expand Search)
step decrease » sizes decrease (Expand Search), teer decrease (Expand Search)
we decrease » _ decrease (Expand Search), nn decrease (Expand Search), teer decrease (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
5 step » _ step (Expand Search), a step (Expand Search), 2 step (Expand Search)
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100681
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100682
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100683
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100684
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100685
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100686
Competitive C−H Bond Activation and β-Hydride Elimination at Platinum(II)
Published 2007“…Thermolysis of the five-coordinate Pt(IV) complex (AnIm)Pt(CH<sub>3</sub>)<sub>3</sub> (<b>1b</b>) (AnIm = [<i>o-</i>C<sub>6</sub>H<sub>4</sub>{N(C<sub>6</sub>H<sub>3</sub><i><sup>i</sup></i><sup></sup>Pr<sub>2</sub>)}(CH=NC<sub>6</sub>H<sub>3</sub><i><sup>i</sup></i><sup></sup>Pr<sub>2</sub>)]<sup>-</sup>) in benzene-<i>d</i><sub>6</sub> at 60 °C yields a new Pt(II) olefin hydride complex (<b>2b</b>-<b><i>d</i></b><b><sub>27</sub></b>). …”
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100687
Competitive C−H Bond Activation and β-Hydride Elimination at Platinum(II)
Published 2007“…Thermolysis of the five-coordinate Pt(IV) complex (AnIm)Pt(CH<sub>3</sub>)<sub>3</sub> (<b>1b</b>) (AnIm = [<i>o-</i>C<sub>6</sub>H<sub>4</sub>{N(C<sub>6</sub>H<sub>3</sub><i><sup>i</sup></i><sup></sup>Pr<sub>2</sub>)}(CH=NC<sub>6</sub>H<sub>3</sub><i><sup>i</sup></i><sup></sup>Pr<sub>2</sub>)]<sup>-</sup>) in benzene-<i>d</i><sub>6</sub> at 60 °C yields a new Pt(II) olefin hydride complex (<b>2b</b>-<b><i>d</i></b><b><sub>27</sub></b>). …”
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100688
Eucommia ulmoides extract attenuates angiotensin II-induced cardiac microvascular endothelial cell dysfunction by inactivating p53
Published 2023“…AngII induced CMVEC dysfunction in a concentration-dependent manner. EUE enhanced the proliferative, migratory, and angiogenic capacities and NO, MnSOD, and eNOS levels but repressed apoptosis and vWF and ET-1 levels in AngII-induced dysfunctional CMVECs. …”
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100689
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100690
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100691
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100692
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100693
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100694
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100695
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100696
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100697
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100698
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100699
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”
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100700
Effect of Oxidation and Protonation States on [2Fe–2S] Cluster Nitrosylation Giving {Fe(NO)<sub>2</sub>}<sup>9</sup> Dinitrosyl Iron Complexes (DNICs)
Published 2018“…Peripheral ligand protonation leads to a blue shift of the NO stretching vibrations by about 23 cm<sup>–1</sup> and a significant shift of the reduction potential to less negative values (Δ<i>E</i><sub>1/2</sub> = 0.26 V), but no effect on <sup>57</sup>Fe Mössbauer parameters is observed. …”