• 제목/요약/키워드: NMR Chemical Shift

검색결과 183건 처리시간 0.021초

NMR Chemical Shift for 4d$^n$System (Ⅳ). Calculation of NMR Chemical Shift for 4d$^2$ System in a Strong Crystal Field Environment of Octahedral Symmetry

  • Ahn, Sang-Woon;Oh, Se-Woong;Yang, Jae-Hyun
    • Bulletin of the Korean Chemical Society
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    • 제6권5호
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    • pp.255-259
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    • 1985
  • The NMR chemical shift arising from 4d electron orbital angular momentum and 4d electron spin dipolar-nuclear Spin angular momentum interactions for a $4d^2$ system in a strong crystal field environment of octahedral symmetry has been investigated when the four fold axis is taken as the quantization axis. The NMR results are comparted with the multipolar shift at various R-values and we find that the exact results are in agreement with the multipolar shift when $R{\geqslant}0.20 nm.$ We also separate the NMR shift into the contribution of the $1/R^5$ and $1/R^7$ terms. It is found that the contribution of the $1/R^5$term to the NMR shift is dominant than the contribution of the $1/R^7$ term. Temperature dependence analysis shows that the $1/T^2$ term is the dominant contribution to the NMR shift for a $4d^2$ system but the contribution of the 1/T term may not negligible. The similar results are obtained for a $4d^1$ system from the temperature dependence analysis.

NMR Chemical Shift for a 4d$^1$ system when the Threefold Axis is Chosen to be the Axis of Quantization

  • Ahn, Sang-Woon;Yuk, Geun-Young;Ro, Seung-Woo
    • Bulletin of the Korean Chemical Society
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    • 제7권2호
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    • pp.89-96
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    • 1986
  • The NMR chemical shift arising from 4d electron angular momentum and 4d electron spin dipolar-nuclear spin angular momentum interaction for a $4d^1$ system in a strong crystal field of octahedral symmetry, when the threefold axis is chosen as the quantization axis, has been investigated. A general expression using a nonmultipole expansion method is derived for the NMR chemical shift. From this expression all the multipolar terms are determined. We find that the nonmultipolar results for the NMR chemical shift ${\Delta}B$, is exactly in agreement with the multipolar results when $R {\ge} 0.20$ nm. It is also found that the 1/$R^7$ term contributes to the NMR chemical shift almost the same as the 1/$R^5$ in magnitude. The temperature dependence analysis of ${\Delta}B$/B(ppm) at various values of R shows that the 1/$T^2$ term has the dominant contribution to the NMR chemical shift but the contributions of other two terms are certainly significant for a $4d^1$ system in a strong crystal field of octahedral symmetry when the threefold axis is chosen to be the axis of quantization.

The NMR Chemical Shift for 4d$^n$ Systems(Ⅲ). Calculation of the NMR Shift for a 4d$^1$ System in a Strong Crystal Field Enviroment of Tetragonal Symmetry

  • Ahn, Sang-Woon;Park, Eui-Suh;Oh, Se-Woung
    • Bulletin of the Korean Chemical Society
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    • 제5권2호
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    • pp.55-60
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    • 1984
  • The NMR shift arising from the electron angular momentum and electron spin dipolar-nuclear spin angular momentum interactions has been investigated for a $4d^1$system in a strong crystal field environment of tetragonal symmetry. A general formula for NMR shift is used to compute the NMR shifts along the (100), (010), (001), (110) and (111) axes. We find that from the computed results, the NMR shift along the (100) and (010) axes is consistent with each other in a strong crystal field environment of tetragonal symmetry, but the NMR shift along the (001) axis is about triply greater in magnitude than those along the (100) and (010) axes and is opposite in sign to those along (100) and (010) axes. In this work, we express the expansion coefficients $a_1^{(i)}$ and $b_1^{(i)}$ of $A_i$ and $B_i$ in terms of $g_m^{(i)}$ and $h_m^{(i)}$ and two matrices $c_{lm}$ and $d_{lm}$ of radial dependence. The NMR shift is also separated into the contributions of multipolar terms. We find that $1/R^3$ term contributes dominantly to the NMR shift along the (100), (010), (001) and (110) axes while along the (111) axis $1/R^5$ term dominantly contributes. However, the contribtions of the other terms may not be negligible.

Calculation of the NMR Cheimical Shift for a 4d$^1$ System in a Strong Crystal Field Environment of Trigonal Symmetry with a Threefold Axis of Quantization

  • Ahn, Sang-Woon;Oh, Se-Woung;Ro, Seung-Woo
    • Bulletin of the Korean Chemical Society
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    • 제7권3호
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    • pp.170-178
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    • 1986
  • The NMR chemical shift arising from 4d electron angular momentum and 4d electron angular momentum and 4d electron spin dipolar-nuclear spin angular momentum interactions for a $4d^1$ system in a strong crystal field environment of trigonal symmetry, when the threefold axis is chosen to be the axis of quantization axis, has been examined. A general expression using the nonmultipole expansion method (exact method) is derived for the NMR chemical shift. From this expression all the multipolar terms are determined. We observe that along the (100), (010), (110), and (111) axes the NMR chemical shifts are positive while along the (001) axis, it is negative. We observe that the dipolar term (1/R3) is the dominant contribution to the NMR chemical shift except for along the (111) axis. A comparison of the multipolar terms with the exact values shows also that the multipolar results are exactly in agreement with the exact values around $R{\geqslant}0.2$ nm. The temperature dependence analysis on the NMR chemical shifts may imply that along the (111) axis the contribution to the NMR chemical shift is dominantly pseudo contact interaction. Separation of the contributions of the Fermi and the pseudo contact interactions would correctly imply that the dipolar interaction is the dominant contribution to the NMR chemical shifts along the (100), (010), (001), and (110) axes, but along the (111) axis the Fermi contact interaction is incorrectly the dominant contribution to the NMR chemical shift.

Fluorine-19 NMR Spectroscopic Studies of Phenyl-fluorinated Iron Tetraarylporphyrin Complexes

  • Song, Byung-Ho;Yu, Byung-soo
    • Bulletin of the Korean Chemical Society
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    • 제24권7호
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    • pp.981-985
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    • 2003
  • Fluorine-19 NMR solution measurements have been made for various phenyl-fluorinated iron porphyrin complexes. Large chemical shifts for phenyl fluorine signals of iron(III) and iron(II) are observed, and these signals are sensitive to electronic structure. The chemical shift differences in ortho-phenyl fluorine signals between high-spin ferric and low-spin ferric tetrakis(pentafluorophenyl)porphyrins are approximately 40 ppm, whereas the differences are approximately 7 ppm between high- and low-spin states of ferrous tetrakis(pentafluorophenyl)porphyrin complexes. Analysis of fluorine-19 isotropic shifts for the iron(III) tetrakis(pentafluorophenyl) porphyrin using fluorine-19 NMR indicates there is a sizable contact contribution at the ortho-phenyl fluorine ring position. Large phenyl fluorine-19 NMR chemical shift values, which are sensitive to the oxidation and spin states, can be utilized for identification of the solution electronic structures of iron(III) and iron(II) porphyrin complexes.

Calculation of the NMR Chemical Shift for a 3d$^2$ System in a Strong Crystal Field of Octahedral Symmetry

  • Ahn, Sang-Woon;Kim, Dong-Hee;Park, Eui-Suh
    • Bulletin of the Korean Chemical Society
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    • 제6권2호
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    • pp.63-67
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    • 1985
  • The NMR chemical shift arising from 3d electron spin dipolar nuclear spin angular momentum interactions for a 3d$^2$ system in a strong crystal field environment of octahedral symmetry has been investigated when the fourfold axis is chosen to be our axis of quantization. The NMR shift is separated into the contribution of 1/R$^5$ and 1/R$^7$ terms. A comparision of the multipolar terms with nonmultipolar results shows that the 1/R$^5$ term contributes dominantly to the NMR shift and there is in good agreement between the exact solution and the multipolar results when R ${\ge}$ 0.25. A temperature dependence analysis may lead to the results that the 1/T$^2$ term has the dominant contribution to the NMR shift for a paramagnetic 3d$^2$ system but the contribution of the 1/T term may not be negligible.

라만 분광분석과 NMR 화학 이동 양자 계산을 이용한 엔스테타이트에 용해된 탄소의 원자 환경 연구 (Atomic Structure of Dissolved Carbon in Enstatite: Raman Spectroscopy and Quantum Chemical Calculations of NMR Chemical Shift)

  • 김은정;이성근
    • 한국광물학회지
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    • 제24권4호
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    • pp.289-300
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    • 2011
  • 규산염 물질의 탄소 용해도에 대한 미시적 연구는 규산염 물질의 성질 변화와 지구 시스템 진화에 탄소가 미치는 영향의 이해에 매우 중요하다. 본 연구에서는 탄소가 용해된 엔스테타이트 시료에 대하여 라만(Raman) 분광분석을 실시하고, 양자 화학 계산을 통해 결정구조 내에 용해된 탄소의 원자 환경과 핵자기공명 분광 특성을 예측하였다. 1.5 GPa $1,400^{\circ}C$의 온도 압력 조건에서 2.4 wt%의 비정질 탄소와 함께 합성한 엔스테타이트의 라만 실험에서 엔스테타이트의 진동양상은 확인할 수 있었으나, $CO_2$나 탄산염 이온의 진동양상에 대한 정보는 획득하지 못하였다. 이는 엔스테타이트 내에 용해된 탄소의 양이 매우 적어 시료를 구성하는 원자들의 집합적인 진동양상을 측정하는 라만 분광분석으로는 검출이 어려움을 지시한다. 특정 핵종 중심의 핵자기공명 분광분석을 이용하면, 구조 내에 존재하는 탄소만 선택적으로 측정할 수 있다. 특히 $^{13}C$ NMR 화학 이동(chemical shift)은 원자 환경에 따라 민감하게 변하므로, 양자 화학 계산을 이용하여 $CO_2$와 C가 치환된 엔스테타이트 클러스터의 $^{13}C$ NMR 화학 차폐 텐서(chemical shielding tensor)를 계산하였다. 계산 결과 $CO_2$의 피크는 125 ppm에서 나타나며 이는 기존의 실험결과와 일치하며, 상압에서는 생성이 어렵지만 고압환경에서 생성될 가능성이 있는 배위수가 4인 C의 화학 이동 값은 ~254 ppm으로 예측되었다. 이와 같은 양자 화학 계산 결과는 고분해능 $^{13}C$ NMR 실험의 이해를 돕고 탄소의 원자 환경을 연구하는데 도움을 줄 것이다.

Calculation of NMR Shift in Paramagnetic System when the Threefold Axis is Chosen as the Quantization Axis (Ⅲ). The NMR Shift for 3d$^2$ System in a Strong Crystal Field of Octahedral Symmetry

  • Sang Woon Ahn;Se Woong Oh;Kee Hag Lee
    • Bulletin of the Korean Chemical Society
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    • 제5권3호
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    • pp.93-97
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    • 1984
  • A general expression using the nonmultipole expansion method is derived for the NMR shift arising from 3d electron angular momentum and the 3d electron spin dipolar-nuclear spin angular momentum interactions for a 3$d^2$ system in a strong crystal field environment of octahedral symmetry when the threefold axis is chosen as the quantization axis. The NMR shift is separated to the contribution of constant, $1/R^5\;and\;1/R^7$ terms and compared with the multipolar terms. We find that $1/R^5$ term contributes dominantly to the NMR shift but the contribution of $1/R^7$ term may not be negligible. It is also found that the exact values of the NMR shift are in agreement with the multipolar results for distances larger than 0.35 nm.

The Pseudocontact Shift for a $3d^9$ System in a Strong Crystal Field Environment of Tetragonally Distorted Tetrahedral Symmetry

  • Kim, Dong-Hee;Lee, Kee-Hag
    • Bulletin of the Korean Chemical Society
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    • 제12권6호
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    • pp.618-625
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    • 1991
  • A general expression adopting a nonmultipole expansion method is derived for pseudocontact contribution to the NMR chemical shift arising from the electron orbital angular momentum and electron spin dipolar-nuclear spin angular momentum interaction of $3d^9$ system in a strong crystal field of tetragonally distorted tetrahedral symmetry. From this expression all the multipolar term are determined and the exact solution of ${\Delta}$B/B(ppm) is compared with the multipolar term. The $1/R^5$ term in the multipolar terms contributes dominantly to the NMR chemical shift but the other terms are certainly significant except that of the <111> axis. In addition, an analysis of the temperature dependence of the NMR chemical shift further illustrates that considerable care must be taken in interpeting NMR results in paramagnetic system.

The Relationship between $^{129}Xe$ NMR Chemical Shifts and Nanostructure of Polymers

  • Yoshimizu, Hiroaki;Suzuki, Tomoyuki;Asano, Tomoko;Tsujita, Yoshiharu
    • 한국고분자학회:학술대회논문집
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    • 한국고분자학회 2006년도 IUPAC International Symposium on Advanced Polymers for Emerging Technologies
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    • pp.339-339
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    • 2006
  • In this study, the microvoids in glassy polymers were investigated by Xe sorption and $^{129}Xe$ NMR measurements. Xe sorption isotherms of glassy polymers have been successfully interpreted by the dual-mode sorption model. $^{129}Xe$ NMR chemical shift of the $^{129}Xe$ in the samples show nonlinear low-field shift with increasing sorption amount of Xe because of a fast exchange of Xe atoms between Henry and Langmuir sites, whereas it has showed linear shift against sorption amount of Xe into the Langmuir site. From this Xe-density dependence of the $^{129}Xe$ NMR chemical shift, it has been able to estimate mean size of the microvoids in glassy polymer. It is confirmed that there is correlation between ${C_H}'$ and volume or number of microvoids. From these findings, it is demonstrated that $^{129}Xe$ NMR spectroscopy is a powerful technique to determine the mean size and number of microvoids in glassy polymers.

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