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5-[(3,4,5-trimethoxyphenyl)methylene]-2,2-dimethyl-1,3-dioxane-4,6-dione | 87212-60-0

中文名称
——
中文别名
——
英文名称
5-[(3,4,5-trimethoxyphenyl)methylene]-2,2-dimethyl-1,3-dioxane-4,6-dione
英文别名
2,2-dimethyl-5-(3,4,5-trimethoxybenzylidene)-1,3-dioxane-4,6-dione;5-(3,4,5-trimethoxybenzylidene)-2,2-dimethyl-1,3-dioxane-4,6-dione;2,2-dimethyl-5-[(3,4,5-trimethoxyphenyl)methylidene]-1,3-dioxane-4,6-dione
5-[(3,4,5-trimethoxyphenyl)methylene]-2,2-dimethyl-1,3-dioxane-4,6-dione化学式
CAS
87212-60-0
化学式
C16H18O7
mdl
——
分子量
322.315
InChiKey
QEXAKWRHBFEIIE-UHFFFAOYSA-N
BEILSTEIN
——
EINECS
——
  • 物化性质
  • 计算性质
  • ADMET
  • 安全信息
  • SDS
  • 制备方法与用途
  • 上下游信息
  • 反应信息
  • 文献信息
  • 表征谱图
  • 同类化合物
  • 相关功能分类
  • 相关结构分类

计算性质

  • 辛醇/水分配系数(LogP):
    2.7
  • 重原子数:
    23
  • 可旋转键数:
    4
  • 环数:
    2.0
  • sp3杂化的碳原子比例:
    0.38
  • 拓扑面积:
    80.3
  • 氢给体数:
    0
  • 氢受体数:
    7

SDS

SDS:ee895a69563979c63b591f492a983518
查看

反应信息

  • 作为反应物:
    参考文献:
    名称:
    Process for the preparation of carboxylic acids and derivatives of them
    摘要:
    本发明的主题是一种用于制备通式为的羧酸及其衍生物的过程    其中 R表示氢,或C₁₋₄烷基或(C₁₋₅烷氧基)甲酰基, R₁如权利要求1中定义, R₇代表氢或C₁₋₇烷基团和 R₈表示氢或羧酸基, 通过将通式为的1,3-二氧杂环己烷-4,6-二酮衍生物与醛或酮反应    其中 R₉代表C₁₋₄烷基或苯基,可选地由卤素单取代 R₁₀代表氢或C₁₋₅烷基或 R₉和R₁₀共同形成一个戊烷基, 在甲酸和[a]胺的存在下,如果需要,还可以在上述定义的醇的存在下,          R₇ - OH         VI,    其中 R₇是C₁₋₇烷基, 在20至140°C的温度下,     和/或 将通式的不饱和1,3-二氧杂环己烷-4,6-二酮衍生物还原     和/或 通式为的1,3-二氧杂环己烷-4,6-二酮衍生物 与甲酸在[a]胺的存在下,如果需要,还可以在上述定义的醇的存在下。
    公开号:
    EP0578850A1
  • 作为产物:
    描述:
    丙二酸环(亚)异丙酯3,4,5-三甲氧基苯甲醛哌啶 作用下, 以 乙腈 为溶剂, 反应 18.0h, 以69%的产率得到5-[(3,4,5-trimethoxyphenyl)methylene]-2,2-dimethyl-1,3-dioxane-4,6-dione
    参考文献:
    名称:
    对映选择性铵盐介导的一锅合成高取代的γ-丁内酯
    摘要:
    对铵内盐介导的接入反式β,γ双取代的,全反式- α,β,γ三取代,和α,α,β,γ -tetrasubstituted γ丁内酯轴承各种各样的功能开发。从广为人知的亚苄基Meldrum酸衍生物和α-溴代羰基化合物开始,通过DABCO介导的[2 + 1]环化法获得的γ-丁内酯的收率在32-99%之间,具有极好的非对映选择性(> 95:5)。对映体纯金鸡纳生物碱衍生物的使用使第一个不对称的叶立铵铵介导的方法能够提供(3 R,4R)-β,γ-二取代和(2 R,3 R, 4 R)-α,β,γ-三取代γ-丁内酯,产率中等至良好,对映体比例非常高(97:3)。在确定绝对配置时,证明了转换的可伸缩性。
    DOI:
    10.1002/adsc.202000039
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文献信息

  • Microwave‐associate synthesis of Co <sub>3</sub> O <sub>4</sub> nanoparticles as an effcient nanocatalyst for the synthesis of arylidene barbituric and Meldrum's acid derivatives in green media
    作者:Mahdieh Yahyazadehfar、Enayatollah Sheikhhosseini、Sayed Ali Ahmadi、Dadkhoda Ghazanfari
    DOI:10.1002/aoc.5100
    日期:——
    conditions using controlled, effective, and facile microwave method. The final nanostructures were characterized by SEM, XRD, and TEM analyses. The products had a small size distribution, homogeneous morphology, and crystallographic structures associated with the formation of Co3O4 nanostructures. Moreover, EDS mapping analysis confirmed the existence of Co and O elements in the final structure, and the
    在这项研究中,使用可控,有效且简便的微波方法,在环境适宜的条件下构建了Co 3 O 4纳米催化剂。通过SEM,XRD和TEM分析来表征最终的纳米结构。产物具有较小的尺寸分布,均匀的形态和与Co 3 O 4形成相关的晶体结构纳米结构。此外,EDS作图分析证实了最终结构中存在Co和O元素,并通过VSM研究了样品的磁性。此纳米结构中的催化方法中的应用进一步检查,结果表明,它可作为一种新的候选为亚芳基巴比妥和麦德鲁姆的合成, s至由巴比妥和麦德鲁姆醛的Knoevenagel缩合酸, S酸性中水性介质。这些纳米催化剂的高产率将由纳米结构的性质以及本研究开发的实验程序来证明,这影响了产物的理化特性。
  • Nickel nanoparticles catalyzed chemoselective Knoevenagel condensation of Meldrum’s acid and tandem enol lactonizations via cascade cyclization sequence
    作者:Jitender M. Khurana、Kanika Vij
    DOI:10.1016/j.tetlet.2011.05.032
    日期:2011.7
    A novel protocol has been reported wherein, polyethylene glycol (PEG) stabilized nickel nanoparticles have been used as catalyst for chemoselective Knoevenagel condensation of aromatic aldehydes and Meldrum’s acid to give 5-arylidene Meldrum’s acid which underwent tandem enol lactonization by Michael addition/cyclization sequence with active methylene compounds in the presence of Ni nanoparticles to
    据报导了一种新的方案,其中,用聚乙二醇(PEG)稳定的镍纳米颗粒作为催化剂,用于芳香醛和Meldrum's酸的化学选择性Knoevenagel缩合反应,生成5芳基的Meldrum's酸,并通过Michael加成/环化顺序进行了串联烯醇内酯化。 Ni纳米颗粒的存在下,该活性亚甲基化合物得到相应的烯醇内酯衍生物。
  • Bentonite Catalyzed an Efficient and Green Synthesis of Arylidene Meldrum's Acid Derivatives in Aqueous Media
    作者:Mahdieh Yahyazadehfar、Sayed Ali Ahmadi、Enayatollah Sheikhhosseini、Dadkhoda Ghazanfari
    DOI:10.2174/1570178617999200807155325
    日期:2021.7
    <p>In the present paper, a simple, highly efficient, and environmentally friendly protocol was proposed for the Knoevenagel condensation reaction of aromatic aldehydes using Meldrum’s acid (2,2-dimethyl-4,6-dioxo-1,3-dioxane) with bentonite as an available non-toxic mineral catalyst exposed to aqueous media under green conditions. Together with the substitution protocol of electron-donating or -withdrawing groups, all reactions were finalized from 5 to 120 min in water at 90°C. With regard to such reactions, the purification of columns on products was not a requirement. Considering the environmental aspect, use of water as a green solvent, utilization of a reusable catalyst, simple work-up process and steps, as well as rapid reaction times were taken into account as some characteristics of these chemical reactions.</p></sec></div> <div class="value-text ch">在本文中,我们提出了一种简单、高效且环保的协议,用于在水相介质下进行芳香醛的Knoevenagel缩合反应。该反应使用Meldrum酸(2,2-二甲基-4,6-二氧杂-1,3-二氧环己烷)作为可用的非有毒矿物催化剂,并与膨润土相结合。在90°C的水中,所有反应在5到120分钟内完成,无需对产物进行柱层析纯化。考虑到环境因素,使用水作为绿色溶剂,利用可重复使用的催化剂,简化了工作过程和步骤,以及快速的反应时间,都是这些化学反应的一些特点。</div> </div> </li> <li class="feature-list-item"> <div class="content-title">Stereoselective Sequential Spirocyclopropanation/Cloke–Wilson Rearrangement Reactions for Synthesis of <i>trans</i>-β,γ-Disubstituted γ-Butyrolactones Using Alkylidene Meldrum’s Acid and Benzyl Halides</div> <div class="value"> <div class="value-text"> <span>作者:</span>Minli Zhang、Tong Li、Chaoxing Cui、Xixi Song、Junbiao Chang </div> <div class="value-text"> <span>DOI:</span>10.1021/acs.joc.9b02978 </div> <div class="value-text"> <span>日期:</span>2020.2.21 </div> <div class="value-text en">spirocyclopropanation/Cloke-Wilson <span style='color:#ff0000'>rearrangement</span> reactions have been developed to synthesize γ-butyrolactones using alkylidene Meldrum's acids and benzyl <span style='color:#ff0000'>halides</span>. The DBU-promoted spirocyclopropanation was carried out efficiently at room temperature to generate trans-isomeric spirocyclopropyl Meldrum's acid, and the following stereospecific thermal decarboxylative Cloke-Wilson <span style='color:#ff0000'>rearrangement</span> afforded trans-γ-butyrolactones</div> <div class="value-text ch">已经开发了立体选择性顺序螺环丙烷化/ Cloke-Wilson重排反应以使用亚烷基梅德鲁姆酸和苄基卤化物合成γ-丁内酯。在室温下有效地进行DBU促进的螺环丙烷化反应,生成反式异构的螺环丙基Meldrum酸,随后进行立体定向热脱羧Cloke-Wilson重排,得到反式γ-丁内酯。可以耐受多种芳香族和脂肪族Meldrum酸衍生的烯烃和苄基卤化物。生产了各种反式-β,γ-二取代的γ-丁内酯,总收率中等至良好,为46%至96%,非对映选择性极好。</div> </div> </li> <li class="feature-list-item"> <div class="content-title">A transition metal free expedient approach for the C C bond cleavage of arylidene Meldrum's acid and malononitrile derivatives</div> <div class="value"> <div class="value-text"> <span>作者:</span>Muthiah Suresh、Anusueya Kumari、Raj Bahadur Singh </div> <div class="value-text"> <span>DOI:</span>10.1016/j.tet.2019.130573 </div> <div class="value-text"> <span>日期:</span>2019.10 </div> <div class="value-text en">cleavage of electron deficient alkenes such as <span style='color:#ff0000'>arylidene</span> Meldrum's acid and malononitrile <span style='color:#ff0000'>derivatives</span> are discussed. The CC bond of these compound were cleaved to benzoic acid in good yield at high temperature. Most importantly, with oxone in CH3CN/H2O at 45 °C or m-CPBA in DCM or NaClO2 in THF/H2O or PIDA in THF at room temperature furnished benzaldehyde <span style='color:#ff0000'>derivatives</span> selectively in excellent yields.</div> <div class="value-text ch">讨论了一种用于无电子烯烃(例如亚芳基迈德鲁姆酸和丙二腈衍生物)的C C键裂解的无过渡金属的简便方法。这些化合物的C C键在高温下以高收率裂解为苯甲酸。最重要的是,与过硫酸氢钾CH 3 CN / H 2 O不连到45℃或米-CPBA在DCM或次氯酸钠2的THF / H 2 O或PIDA在THF中在室温下布置的苯甲醛衍生物选择性地在良好的产率。</div> </div> </li> </ul> <a href="https://chem.molaid.com/material/detail?source=UserSourcePortal&id=3101928red4da83454M0&inchikey=QEXAKWRHBFEIIE-UHFFFAOYSA-N" target="_blank" rel="nofollow" class="view-more">查看更多</a> </div> <div class="module" id="tongleihuahewu"> <h3 class="module-title"><i class="iconfont icon-tongleihuahewu"></i>同类化合物</h3> <div class="compounds-list"> <a target="_blank" href="https://www.molaid.com/MS_152" class="compound-item" 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class="compound-item" title="间甲苯氧基乙腈">间甲苯氧基乙腈</a> <a target="_blank" href="https://www.molaid.com/MS_3605" class="compound-item" title="间甲苯异氰酸酯">间甲苯异氰酸酯</a> <a target="_blank" href="https://www.molaid.com/MS_3615" class="compound-item" title="间甲氧基苯酚阴离子">间甲氧基苯酚阴离子</a> <a target="_blank" href="https://www.molaid.com/MS_3617" class="compound-item" title="间甲氧基苯甲醛">间甲氧基苯甲醛</a> <a target="_blank" href="https://www.molaid.com/MS_3621" class="compound-item" title="间甲氧基苯乙基溴">间甲氧基苯乙基溴</a> <a target="_blank" href="https://www.molaid.com/MS_3626" class="compound-item" title="间甲基苯甲醚-D3">间甲基苯甲醚-D3</a> <a target="_blank" href="https://www.molaid.com/MS_3627" class="compound-item" title="间甲基苯甲醚">间甲基苯甲醚</a> <a target="_blank" href="https://www.molaid.com/MS_3644" class="compound-item" title="间溴苯甲醚">间溴苯甲醚</a> <a target="_blank" href="https://www.molaid.com/MS_3672" class="compound-item" title="间氯三氟甲氧基苯">间氯三氟甲氧基苯</a> </div> </div> <div class="module" id="xiangguanjiegoufenlei"> <h3 class="module-title"><i class="iconfont icon-xiangguanjiegoufenlei"></i>相关结构分类</h3> <div class="compounds-list"> <a href="https://www.molaid.com/fenzi/10" class="compound-item" title="有机杂环化合物">有机杂环化合物</a> <a href="https://www.molaid.com/fenzi/11" class="compound-item" title="苯类化合物">苯类化合物</a> <a href="https://www.molaid.com/fenzi/12" class="compound-item" title="木脂素、新木脂素和相关化合物">木脂素、新木脂素和相关化合物</a> <a href="https://www.molaid.com/fenzi/13" class="compound-item" title="苯丙烷和聚酮">苯丙烷和聚酮</a> <a href="https://www.molaid.com/fenzi/14" class="compound-item" title="脂质和类脂质分子">脂质和类脂质分子</a> <a href="https://www.molaid.com/fenzi/15" class="compound-item" title="有机酸及其衍生物">有机酸及其衍生物</a> <a href="https://www.molaid.com/fenzi/16" class="compound-item" title="有机氧化合物">有机氧化合物</a> <a href="https://www.molaid.com/fenzi/17" class="compound-item" title="生物碱及其衍生物">生物碱及其衍生物</a> <a href="https://www.molaid.com/fenzi/18" class="compound-item" title="有机硫化合物">有机硫化合物</a> <a href="https://www.molaid.com/fenzi/19" class="compound-item" title="核苷、核苷酸和类似物">核苷、核苷酸和类似物</a> <a href="https://www.molaid.com/fenzi/20" class="compound-item" title="碳氢化合物衍生物">碳氢化合物衍生物</a> <a href="https://www.molaid.com/fenzi/21" class="compound-item" title="有机氮化合物">有机氮化合物</a> <a href="https://www.molaid.com/fenzi/22" class="compound-item" title="碳氢化合物">碳氢化合物</a> <a href="https://www.molaid.com/fenzi/23" class="compound-item" title="有机卤素化合物">有机卤素化合物</a> <a href="https://www.molaid.com/fenzi/24" class="compound-item" title="有机聚合物">有机聚合物</a> <a href="https://www.molaid.com/fenzi/25" class="compound-item" title="有机金属化合物">有机金属化合物</a> <a href="https://www.molaid.com/fenzi/26" class="compound-item" title="乙炔化物 ">乙炔化物 </a> <a href="https://www.molaid.com/fenzi/27" class="compound-item" title="有机磷化合物">有机磷化合物</a> <a href="https://www.molaid.com/fenzi/28" class="compound-item" title="叠烯">叠烯</a> <a href="https://www.molaid.com/fenzi/29" class="compound-item" title="有机1,3-偶极化合物">有机1,3-偶极化合物</a> <a href="https://www.molaid.com/fenzi/30" class="compound-item" title="碳化物">碳化物</a> <a href="https://www.molaid.com/fenzi/31" class="compound-item" title="有机盐">有机盐</a> <a href="https://www.molaid.com/fenzi/32" class="compound-item" title="有机阳离子">有机阳离子</a> <a href="https://www.molaid.com/fenzi/33" class="compound-item" title="卡宾">卡宾</a> <a href="https://www.molaid.com/fenzi/34" class="compound-item" title="有机阴离子">有机阴离子</a> </div> </div> </div> <div class="right"> <div class="module"> <link rel="stylesheet" href="https://www.molaid.com/assets/css/common/hot-molecular.css?v=202504271"> <div class="component-card hot-molecular-card" style="--color: #FF4539;"> <div class="title"> <h3 class="title-name">热门分子</h3> </div> <div class="card-content"> <ul class="list"> <li class="item item-special" data-sort="TOP"> <div class="item-img"> <img src="data:image/svg+xml;base64,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" 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