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SIGMA 718165-100ML 三正辛基膦 4731-

53-7
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  • ¥2230
  • Sigma-Aldrich
  • 进口
  • 718165-100ML
  • 2025年09月23日
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    • 详细信息
    • 文献和实验
    • 技术资料
    • 保存条件

      常温

    • 保质期

      根据瓶身LOT号查询

    • 英文名

      Trioctylphosphine

    • 库存

      有现货

    • 供应商

      浙江羽翔生物科技有限公司

    • CAS号

      4731-53-7

    • 规格

      100ML

    属性

    产品名称

    三正辛基膦, 97%

    质量水平

    100

    方案

    97%

    表单

    liquid

    反应适用性

    reaction type: Buchwald-Hartwig Cross Coupling Reaction
    reaction type: Heck Reaction
    reaction type: Hiyama Coupling
    reaction type: Negishi Coupling
    reaction type: Sonogashira Coupling
    reaction type: Stille Coupling
    reaction type: Suzuki-Miyaura Coupling
    reagent type: ligand

    折射率

    n20/D 1.468 (lit.)

    沸点

    284-291 °C/50 mmHg (lit.)

    密度

    0.831 g/mL at 25 °C (lit.)

    官能团

    phosphine

    SMILES字符串

    CCCCCCCCP(CCCCCCCC)CCCCCCCC

    InChI

    1S/C24H51P/c1-4-7-10-13-16-19-22-25(23-20-17-14-11-8-5-2)24-21-18-15-12-9-6-3/h4-24H2,1-3H3

    InChI key

    RMZAYIKUYWXQPB-UHFFFAOYSA-N

    一般描述

    三辛基膦可作为磷源,用于金属纳米颗粒的合成。

    应用

    三辛基膦可用于金属纳米晶、块状粉体、箔、线、薄膜向金属磷化物的转化。它还可以作为由醋酸镉和硫中合成硫化ge纳米棒反应的溶剂和稳定剂。

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    图标文献和实验
    该产品被引用文献

    3D printing of radioactive phantoms for nuclear medicine imaging.

    EJNMMI physics (2020-04-24)
    Tilman Läppchen, Lorenz P Meier, Markus Fürstner, George A Prenosil, Thomas Krause, Axel Rominger, Bernd Klaeser, Michael Hentschel
    PMID32323035
    摘要

    For multicenter clinical studies, PET/CT and SPECT/CT scanners need to be validated to ensure comparability between various scanner types and brands. This validation is usually performed using hollow phantoms filled with radioactive liquids. In recent years, 3D printing technology has gained increasing popularity for manufacturing of phantoms, as it is cost-efficient and allows preparation of phantoms of almost any shape. So far, however, direct 3D printing with radioactive building materials has not yet been reported. The aim of this work was to develop a procedure for preparation of 99mTc-containing building materials and demonstrate successful application of this material for 3D printing of several test objects. The desired activity of a [99mTc]pertechnetate solution eluted from a 99Mo/99mTc-generator was added to the liquid 3D building material, followed by a minute amount of trioctylphosphine. The resulting two-phase mixture was thoroughly mixed. Following separation of the phases and chemical removal of traces of water, the radioactive building material was diluted with the required volume of non-radioactive building material and directly used for 3D printing. Using our optimized extraction protocol with trioctylphosphine as complex-forming phase transfer agent, technetium-99m was efficiently transferred from the aqueous 99Mo/99mTc-generator eluate into the organic liquid resin monomer. The observed radioactivity concentration ratio between the organic phase and the water phase was > 2000:1. The radioactivity was homogeneously distributed in the liquid resin monomer. We did not note differences in the 3D printing behavior of the radiolabeled and the unlabeled organic liquid resin monomers. Radio-TLC and SPECT studies showed homogenous 2D and 3D distribution of radioactivity throughout the printed phantoms. The radioactivity was stably bound in the resin, apart from a small amount of surface-extractable radioactivity under harsh conditions (ethanol at 50 °C). 3D printing of radioactive phantoms using 99mTc-containing building materials is feasible. Compared to the classical fillable phantoms, 3D printing with radioactive building materials allows manufacturing of phantoms without cold walls and in almost any shape. Related procedures with longer-lived radionuclides will enable production of phantoms for scanner validation and quality control.

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    SIGMA 718165-100ML 三正辛基膦 4731-53-7
    ¥2230