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  1. 141

    A Final Result on the Oscillation of Solutions of the Linear Discrete Delayed Equation Δx(n)=−p(n)x(n−k) with a Positive Coefficient by J. Baštinec, L. Berezansky, J. Diblík, Z. Šmarda

    Published 2011-01-01
    “…A linear (k+1)th-order discrete delayed equation Δx(n)=−p(n)x(n−k) where p(n) a positive sequence is considered for n→∞. …”
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  2. 142

    The crystal structure of fac-tricarbonyl(2-pyridin-2-yl-quinoline-κ2 N,N′)-(pyrazole-κN)rhenium(I)nitrate, C20H14N4O3ReNO3 by Sithole Sibusiso A., Malan Federick P., Katerere David R., Manicum Amanda-Lee E.

    Published 2023-08-01
    “…C20H14N4O3 ${\mathrm{C}}_{20}{\mathrm{H}}_{14}{\mathrm{N}}_{4}{\mathrm{O}}_{3}$ ReNO3 ${\mathrm{N}\mathrm{O}}_{3}$ , monoclinic, P21 ${2}_{1}$ /c (no. 14), a = 12.9572 (2), b = 9.1568 (2), c = 17.3658 (3) Å, β = 97.267(2)° $97.267(2){}^{\circ}$ , V = 2043.84 (7) Å3 ${\mathrm{\mathring{\text{A}}}}^{3}$ , Z = 4, Rgt ${R}_{gt}$ (F) = 0.0231, wRref $w{R}_{ref}$ (F2 ${F}^{2}$ ) = 0.0514, T = 154 K…”
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  3. 143

    Determination of Temperature-Dependent Stress State in Thin AlGaN Layer of AlGaN/GaN HEMT Heterostructures by Near-Resonant Raman Scattering by Yanli Liu, Xifeng Yang, Dunjun Chen, Hai Lu, Rong Zhang, Youdou Zheng

    Published 2015-01-01
    “…The temperature-dependent stress state in the AlGaN barrier layer of AlGaN/GaN heterostructure grown on sapphire substrate was investigated by ultraviolet (UV) near-resonant Raman scattering. …”
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  4. 144

    trans-Bis(quinoline-8-amine-κ2N,N′)bis(1,1,3,3-tetracyano-2-methoxypropenido-κN)iron(II) by Fatima Setifi, Zouaoui Setifi, Uwe Böhme, Mohammad Hadi Al-Douh, Achouak Satour

    Published 2024-12-01
    “…The title compound, [Fe(C8H3N4O)2(C9H8N2)2], was synthesized solvothermally. …”
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  5. 145
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  7. 147

    Effect of N,C-ITO on Composite N,C-Ti/N,C-ITO/ITO Electrode Used for Photoelectrochemical Degradation of Aqueous Pollutant with Simultaneous Hydrogen Production by Kee-Rong Wu, Chung-Hsuang Hung, Chung-Wei Yeh, Chien-Chung Wang, Jiing-Kae Wu

    Published 2012-01-01
    “…This study reports the effect of N,C-ITO (indium tin oxide) layer on composite N,C-TiO2/N,C-ITO/ITO (Ti/TO) electrode used for efficient photoelectrocatalytic (PEC) degradation of aqueous pollutant with simultaneous hydrogen production. …”
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  8. 148

    The Crystallization, Melting Behavior, and Thermal Stability of Poly(L-lactic acid) Induced by N,N,N′-Tris(benzoyl) Trimesic Acid Hydrazide as an Organic Nucleating Agent by Yan-Hua Cai, Yan-Hua Zhang

    Published 2014-01-01
    “…N,N,N′-Tris(benzoyl) trimesic acid hydrazide (TTAD), as a novel nucleating agent of poly(L-lactic acid) (PLLA), was synthesized and characterized by FT-IR and 1H NMR. …”
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  9. 149

    Construction of Tb3+ PVC-MembraneElectrode Based on N,N’-Bis(pyrrolylmethylene)-2-aminobenzylamine by Hassan Ali Zamani, Zynab Rafati, Soraia Meghdadi

    Published 2011-01-01
    “…In this work, we report as new Tb3+-PVC membrane sensor based on N,N’-bis(pyrrolylmethylene)- 2-aminobenzylamine (PMA) as a suitable ion carrier. …”
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  10. 150

    A New HPLC-ELSD Method for Simultaneous Determination of N-Acetylglucosamine and N-Acetylgalactosamine in Dairy Foods by Ho Jin Kim, In Kyung Bae, Min Hee Jeong, Hye Jin Park, Jin Sil Jung, Jang Eok Kim

    Published 2015-01-01
    “…A rapid high performance liquid chromatographic method with evaporative light scattering detection (HPLC-ELSD), using a carbohydrate column, was developed for simultaneous determination of N-acetylglucosamine (GlcNAc) and N-acetylgalactosamine (GalNAc) in dairy foods. …”
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  11. 151

    THE STRUCTURE OF GRAPHS ON \(n\) VERTICES WITH THE DEGREE SUM OF ANY TWO NONADJACENT VERTICES EQUAL TO \(n-2\) by Do Nhu An

    Published 2021-10-01
    “…Let \(G\) be an undirected simple graph on n vertices and \(\sigma^2(G)=n-2\) (degree sum of any two non-adjacent vertices in \(G\) is equal to \(n-2\)) and \(\alpha(G)\) be the cardinality of an maximum independent set of \(G\). …”
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  12. 152
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  17. 157

    The crystal structure of [(1,10-phenantroline-κ2N,N′)-bis(6-phenylpyridine-2-carboxylato-κ2N,O)manganese(II)] monohydrate, C36H26N4O5Mn by Hua-Xiang Zhang, Xi-Shi Tai

    Published 2022-08-01
    “…C36H26N4O5Mn, orthorhombic, P212121 (no. 19), a = 10.7134(7) Å, b = 10.7573(10) Å, c = 26.6304(18) Å, β = 90°, V = 3069.1(4) Å3, Z = 4, Rgt(F) = 0.0454, wRref(F2) = 0.0890, T = 220 K.…”
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  18. 158

    The crystal structure of fac-tricarbonyl((pyridin-2-yl)methanamino-κ2 N,N′)-((pyridin-2-yl)methanamino-κN)rhenium(I) nitrate, C15H16O3N4Re by Ramoba Lesetja V., Alexander Orbett T., Malan Frederick P., Manicum Amanda-Lee E.

    Published 2023-08-01
    “…C15H16O3N4Re, triclinic, P1̄ (no. 2), a = 7.4939(2) Å, b = 10.1316(2) Å, c = 13.8351(3) Å, α = 103.453(2)°, β = 101.992(2)°, γ = 107.880(2)°, V = 926.98(4) Å3, Z = 2, R gt(F) = 0.0341, wR ref(F 2) = 0.0861, T = 150 K.…”
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  19. 159

    The crystal structure of (2,2′-bipyridine-κ2N,N′)- bis(6-phenylpyridine-2-carboxylate-κ2N,O)manganese(II)] monohydrate, C34H26N4O5Mn by Tai Xi-Shi, Wang Li-Hua

    Published 2022-08-01
    “…C34H26N4O5Mn, monoclinic, C2/c (no. 15), a = 29.4330(18) Å, b = 10.4120(6) Å, c = 20.0207(12) Å, β = 107.246(6)°, V = 5859.6(6) Å3, Z = 8, Rgt(F) = 0.0380, wRref(F2) = 0.0865, T = 200 K.…”
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  20. 160

    The crystal structure of bis(μ2-5-chloro-2-oxido-N-(1-oxidopropylidene)benzohydrazonato-κ5 N,O,O′:N′,O′′)-octakis(pyridine-κ1 N)trinickel(II) C60H56Cl2N12Ni3O6 by Xin Wang, Liguo Yang, Yizhuo Dong, Yanlin Ye, Yifan Wang

    Published 2022-08-01
    “…C60H56Cl2N12Ni3O6, triclinic, P1‾ $P\overline{1}$ (no. 2), a = 12.684(5) Å, b = 12.827(5) Å, c = 19.100(7) Å, α = 84.641(4)°, β = 81.178(4)°, γ = 85.471(4)°, V = 3050.7(19) Å3, Z = 2, R gt(F) = 0.0267, wR ref(F 2) = 0.0735, T = 298 K.…”
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