对苯二异氰酸酯 (PPDI)

CAS: 104-49-4 货号: P103566 分子式: C6H4(NCO)2 分子量: 160.13 Beilstein号: 13(4)174 EC号: 203-207-6
有货
级别和纯度: ≥98%
别名
1,4-苯二异氰酸 | 2-氟-α-甲基-4-联苯基乙酸 | 1,4-二异氰酸苯酯 | 对亚苯基二异氰酸酯
储存条件
2-8°C储存,充氩
运输条件
低温运输
★
规格
库存
价格
数量
5g
P103566-5g
现货 Stock Image
¥31.90
25g
P103566-25g
现货 Stock Image
¥99.90
100g
P103566-100g
现货 Stock Image
¥311.90
250g
P103566-250g
现货 Stock Image
¥588.90
500g
P103566-500g
现货 Stock Image
¥906.90
2.5kg
P103566-2.5kg
期货 Stock Image
¥3,959.90
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🧪

为什么选择此级别

提供 ≥98% 纯度,适用于对基线干扰要求严格的色谱和分析工作流程。

🌡

储存与运输

2-8°C储存,充氩。低温运输 。请查阅批次 COA 获取详细规格。

📋

质量文档

SDS、COA、产品数据表及规格说明书均可下载。可通过批号查询获取批次 COA。

📚

文献证明

在色谱分析、有机合成和交叉偶联反应领域已被 40 篇同行评审文献引用。

概述


1,4-Phenylene diisocyanate has been used: as croos-linking reagent to investigate the mechanism of enzyme immobilization on silanized surfaces in the synthesis of dipodal bis-urea receptor, a selective receptor for hydrogen sulfate in deposition of polyurea resists films via molecular layer deposition

规格

别名
1,4-苯二异氰酸 | 2-氟-α-甲基-4-联苯基乙酸 | 1,4-二异氰酸苯酯 | 对亚苯基二异氰酸酯
英文别名
Phenylene-1,4-diisocyanate | 1,4-Benzenediisocyanate | Benzene 1,4-Diisocyanate | EN300-20167 | 4,4'-Phenylisocyanate | UNII-OKE64XZR2L | 1,4-PHENYLENEBIS(ISOCYANATE) | BENZENE, 1,4-DIISOCYANATO- | FT-0631571 | 1,4-Phenylene diisocyanate | p-Phenylene dii
规格或纯度
≥98%
英文名称
1,4-Phenylene diisocyanate (PPDI)
应用
1,4-Phenylene diisocyanate has been used: as croos-linking reagent to investigate the mechanism of enzyme immobilization on silanized surfaces in the synthesis of dipodal bis-urea receptor, a selective receptor for hydrogen sulfate in deposition of polyurea resists films via molecular layer deposition
储存条件
2-8°C储存,充氩
运输条件
低温运输
纯度
≥98%
名称和识别符
EC号
203-207-6
分子类型
小分子
IUPAC Name
1,4-diisocyanatobenzene
INCHI
1S/C8H4N2O2/c11-5-9-7-1-2-8(4-3-7)10-6-12/h1-4H
InChi Key
ALQLPWJFHRMHIU-UHFFFAOYSA-N
Smiles
C1=CC(=CC=C1N=C=O)N=C=O
Isomeric SMILES
C1=CC(=CC=C1N=C=O)N=C=O
UN Number
Packing Group
I
分子量
160.13
Beilstein号
13(4)174
Reaxy-Rn
511118
Reaxys-RN link address
https://www.reaxys.com/reaxys/secured/hopinto.do?context=S&query=IDE.XRN=511118&ln=

技术文档

📋 安全数据表 (SDS)

全面的危险、操作、储存及法规合规文件。

下载 SDS →

✅ 分析证书 (COA)

批次质量数据。输入批号以获取对应 COA。

查询 COA →

📊 产品数据表

产品规格和应用的快速参考摘要。

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🔬 规格说明书

该级别的完整质量属性和验收标准。

查看规格说明 →

高级数据

系统学分类

分类树(Taxonomy Tree)

界(kingdom) 有机化合物
超类(Superclass) 苯类化合物
类(Class) 苯及其取代衍生物
亚类(Subclass) 暂无
中间层级节点(Intermediate Tree Nodes) 暂无
直接上位类(Direct Parent) 苯及其取代衍生物
其他上位类(Alternative Parents) 异氰酸酯  炔丙基型1,3-偶极有机化合物  有机光子化合物  有机氧化合物  有机氧化物  碳氢化合物衍生物  
分子骨架(Molecular Framework) 芳香族同单环化合物
取代基(Substituents) 芳香族同单环化合物 - 烃衍生物 - 异氰酸酯 - 单环苯基基团 - 有机1,3-双极性化合物 - 有机硝基化合物 - 有机氧化物 - 有机氧化合物 - 有机氮化合物 - 有机氧化合物 - 有机氮化合物 - 丙炔型1,3-双极性有机化合物
描述(Description) 本化合物属于苯及其取代衍生物类有机化合物。此类芳香化合物含单环苯环结构体系。
外部描述符(External Descriptors) 暂无
三维结构
交互式化学结构模型





化学和物理性质
溶解性
soluble:THF,acetone,ethyl acetate,toluene
密度
1.17
敏感性
对湿度和热敏感
闪点(℉)
>235.4 °F
闪点(℃)
>113 °C
沸点
260°C
熔点
96-99°C
分子量
160.130 g/mol
XLogP3
3.500
氢键供体数Hydrogen Bond Donor Count
0
氢键受体数Hydrogen Bond Acceptor Count
4
可旋转键计数Rotatable Bond Count
2
精确质量Exact Mass
160.027 Da
单同位素质量Monoisotopic Mass
160.027 Da
拓扑极表面积Topological Polar Surface Area
58.900 Ų
重原子数Heavy Atom Count
12
形式电荷Formal Charge
0
复杂度Complexity
205.000
同位素原子数Isotope Atom Count
0
定义的原子立体中心计数Defined Atom Stereocenter Count
0
未定义的原子立体中心计数Undefined Atom Stereocenter Count
0
定义的键立体中心计数Defined Bond Stereocenter Count
0
未定义的键立体中心计数Undefined Bond Stereocenter Count
0
所有立体化学键的总数The total count of all stereochemical bonds
0
共价键合单元计数Covalently-Bonded Unit Count
1
安全和危险性(GHS)
象形图
GHS05,   GHS06,   GHS07,   GHS08,   GHS09
信号词
危险
危险声明

H302: 吞食有害

H312: 皮肤接触有害

H315: 引起皮肤刺激

H317: 可能引起皮肤过敏反应

H318: 造成严重的眼睛损伤

H319: 引起严重眼睛刺激

H330: 吸入致命

H332: 吸入有害

H334: 吸入可能引起过敏或哮喘病症状或呼吸困难

H373: 通过长时间或反复暴露对器官造成损害

H411: 对水生生物有毒并具有长期持续影响

预防措施声明

P260: 不要吸入灰尘/烟雾/气体/雾/蒸汽/喷雾。

P261: 避免吸入灰尘/烟雾/气体/雾/蒸汽/喷雾

P264: 处理后要彻底洗手。

P270: 使用本产品时,请勿进食、饮水或吸烟。

P271: 仅在室外或通风良好的地方使用。

P272: 被污染的工作服不允许离开工作场所

P273: 避免释放到环境中。

P280: 戴防护手套/穿防护服/戴防护眼罩/戴防护面具。

P284: 如果通风不良,请佩戴呼吸防护装置。

P320: 迫切需要特殊治疗(请参阅此标签上的...)。

P321: 特殊处理(请参阅此标签上的...)。

P330: 漱口

P391: 收集溢出物

P302+P352: 如皮肤沾染:用水充分清洗。

P304+P340: 如误吸入:将人转移到空气新鲜处,保持呼吸舒适体位。

P305+P351+P338: 如进入眼睛:用水小心冲洗几分钟。如戴隐形眼镜并可方便地取出,取出隐形眼镜。继续冲洗。

P333+P313: 如发生皮肤刺激或皮疹:求医/就诊。

P362+P364: 脱掉沾污的衣服,清洗后方可重新使用。

P405: 密闭存放

P403+P233: 存放在通风良好的地方。保持容器密闭。

P501: 将内容物/容器处理到。。。

P264+P265: 处理后彻底洗手[和…]。不要触摸眼睛。

P301+P317: 如果被吞咽:请寻求医疗帮助。

P305+P354+P338: 如果进入眼睛:立即用水冲洗几分钟。取下隐形眼镜(如果有的话),并且操作简单。继续冲洗。

P317: 寻求紧急医疗救助。

P337+P317: 如果眼睛刺激持续:寻求医疗帮助。

P332+P317: 如果出现皮肤刺激:请寻求医疗帮助。

P316: 立即寻求紧急医疗救助。

P319: 如果你感到不适,请寻求医疗帮助。

P342+P316: 如果出现呼吸道症状:立即寻求急救。

WGK Germany
3
RTECS
CZ6150000
Class
6.1
个人防护装备
dust mask type N95 (US),Eyeshields,Faceshields,Gloves
质检证书(CoA,COO,BSE/TSE 和分析图谱)
C of A & Other Certificates(BSE/TSE, COO):
输入批号以搜索分析图谱:

通过匹配包装上的批号来查找并下载产品的 COA,每批产品都进行了严格的验证,您可放心使用!

找到44个结果

批号(Lot Number) 证书类型 货号
L2502504 分析证书 P103566
L2502503 分析证书 P103566
L2502502 分析证书 P103566
L2502365 分析证书 P103566
B2513078 分析证书 P103566
I2503003 分析证书 P103566
D2517499 分析证书 P103566
A2405225 分析证书 P103566
A2405356 分析证书 P103566
A2405354 分析证书 P103566
A2405230 分析证书 P103566
A2405228 分析证书 P103566
J2324051 分析证书 P103566
F2223363 分析证书 P103566
C2511100 分析证书 P103566
L2502501 分析证书 P103566
L2502505 分析证书 P103566
H2614072 分析证书 P103566
F2625055 分析证书 P103566
E2628108 分析证书 P103566
L2416773 分析证书 P103566
L2416819 分析证书 P103566
E2515035 分析证书 P103566
D2517501 分析证书 P103566
D2517500 分析证书 P103566
D2517498 分析证书 P103566
D2517497 分析证书 P103566
A2405224 分析证书 P103566
A2405226 分析证书 P103566
A2405227 分析证书 P103566
A2405229 分析证书 P103566
A2405355 分析证书 P103566
L2420086 分析证书 P103566
L1904106 分析证书 P103566
I2221043 分析证书 P103566
F2307370 分析证书 P103566
F2223386 分析证书 P103566
F2223382 分析证书 P103566
F2223365 分析证书 P103566
F2223359 分析证书 P103566
D2501498 分析证书 P103566
L2416818 分析证书 P103566
L2416827 分析证书 P103566
I2002166 分析证书 P103566

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技术文档和文章
此产品的引用文献
引用文献
1. Shucheng Liu, Nana Tang, Xuan Zhang, Hao Huang, Jinyu Li, Hongxiang Ou.  (2023)  Hydrophilic porous boronate imprinted hydrogels for ultrafast transport and highly specific separation of flavoniods: A interfacial cooperative emulsion imprinted strategy based on microreactors.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2023.147502]
2. Xing Zhou, Guosheng Wang, Dexiang Li, Qi Wang, Keming Zhu, Yaya Hao, Yueyang Xu, Neng Li.  (2023)  Shape-memory polyurethane elastomer originated from waste PET plastic and their composites with carbon nanotube for sensitive and stretchable strain sensor.  COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING,  [10.1016/j.compositesa.2023.107920]
3. Jiadong Wang, Min Wang, Xi Zhang, Yang Han, Yingxue Wu, Dong Wang, Xuan Qin, Yonglai Lu, Liqun Zhang.  (2023)  Quantification Characterization of Hierarchical Structure of Polyurethane by Advanced AFM and X-ray Techniques.  ACS Applied Materials & Interfaces,  [PMID:37705159] [10.1021/acsami.3c07860]
4. Yi Liu, Shuangjiang Li, Ying Chen, Mengrui Li, Zewen Chen, Tianding Hu, Lan Shi, Manoj Pudukudy, Shaoyun Shan, Yunfei Zhi.  (2023)  Urea/amide-functionalized melamine-based organic polymers as efficient heterogeneous catalysts for CO2 cycloaddition.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2023.145918]
5. Qinglin Dai, Daohao Li, Yuanyuan Sun, Hu Wang, Yun Lu, Dongjiang Yang.  (2023)  Low temperature-resistant superhydrophobic and elastic cellulose aerogels derived from seaweed solid waste as efficient oil traps for oil/water separation.  CHEMOSPHERE,  [PMID:37330065] [10.1016/j.chemosphere.2023.139179]
6. Jinhua Li, Xiuli Xu, Feng Zhang, Wei Guo, Xiujuan Wang, Yun Xie, Feifang Zhang.  (2023)  Urea-based magnetic porous organic frameworks as novel adsorbent for the enrichment of phenylurea herbicides in foods.  FOOD CHEMISTRY,  [PMID:37267786] [10.1016/j.foodchem.2023.136436]
7. Naijie Wang, Di Qin, Qiu Sun, Xiangqun Chen, Ying Song, Tiezhu Xin.  (2023)  Single-Ion Conducting Polyurethane-Ester Solid Polymer Electrolyte Membrane toward Lithium Metal Batteries.  ACS Applied Polymer Materials,  [10.1021/acsapm.2c02197]
8. Jingjing Bai, Jingjing Cui, Yidan Ma, Wenhao Zhao, Yulong Wang, Zhenzhong Li.  (2021)  Orange emissive N-doped carbon dots and their application in detection of water in organic solvents and the polyurethane composites.  OPTICAL MATERIALS,  [10.1016/j.optmat.2021.111927]
9. Haiyang Liu, Jiaxing Wang, Miao Sun, Yu Wang, Runing Zhao, Xiaojie Zhang, Yanfei Zhao.  (2021)  Novel melamine-based porous organic polymers: synthesis, characterizations, morphology modifications, and their applications in lithium–sulfur batteries.  NANOTECHNOLOGY,  33  (8): (085704).  [PMID:34781273] [10.1088/1361-6528/ac39c9]
10. Minggui Peng, Peng Liu, Zhangjian Li, Zhe Li, Jiaming Wen, Chaobo Yan, Qi Zhang, Xierong Zeng, Jizhao Zou.  (2021)  Construction of Co/N-doped porous rose-like structure for efficient oxygen reduction reaction catalyst and Zn-air battery.  APPLIED SURFACE SCIENCE,  [10.1016/j.apsusc.2021.150665]
11. Yunxia Xia, Tuo Di, Zhaohui Meng, Tingting Zhu, Yujie Lei, Sheng Chen, Tiesheng Li, Lei Li.  (2021)  Versatile One-Pot Construction Strategy for the Preparation of Porous Organic Polymers via Domino Polymerization.  MACROMOLECULES,  [10.1021/acs.macromol.1c00473]
12. Wenlian Wang, Tianxiang Yang, Shuai Li, Jing Lu, Xiaoyang Zhao, Weizhen Fan, Chaojun Fan, Xiaoxi Zuo, Shaolong Tie, Junmin Nan.  (2020)  1,4-Phenylene diisocyanate (PPDI)-containing low H2O/HF and multi-functional electrolyte for LiNi0·6Co0·2Mn0·2O2/graphite batteries with enhanced performances.  JOURNAL OF POWER SOURCES,  [10.1016/j.jpowsour.2020.229172]
13. Jing Tan, Jittima Meeprasert, Yuxue Ding, Supawadee Namuangruk, Xuesong Ding, Changchun Wang, Jia Guo.  (2018)  Cyclomatrix Polyphosphazene Porous Networks with J-Aggregated Multiphthalocyanine Arrays for Dual-Modality Near-Infrared Photosensitizers.  ACS Applied Materials & Interfaces,  [PMID:30362706] [10.1021/acsami.8b13594]
14. Kai Xu, Haiming Jin, Linfang Wang, Yi Liu, Chen Zhou, Jürgen Caro, Aisheng Huang.  (2018)  Seeding-free synthesis of oriented zeolite LTA membrane on PDI-modified support for dehydration of alcohols.  SEPARATION SCIENCE AND TECHNOLOGY,  [10.1080/01496395.2018.1434203]
15. Wanqing Lei, Changqing Fang, Xing Zhou, Jiabin Li, Rong Yang, Zisen Zhang, Donghong Liu.  (2017)  Thermal properties of polyurethane elastomer with different flexible molecular chain based on para-phenylene diisocyanate.  JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY,  [10.1016/j.jmst.2017.05.014]
16. Wanqing Lei, Changqing Fang, Xing Zhou, Youliang Cheng, Rong Yang, Donghong Liu.  (2017)  Morphology and thermal properties of polyurethane elastomer based on representative structural chain extenders.  THERMOCHIMICA ACTA,  [10.1016/j.tca.2017.04.008]
17. Bo Feng, Kai Xu, Aisheng Huang.  (2016)  Covalent synthesis of three-dimensional graphene oxide framework (GOF) membrane for seawater desalination.  DESALINATION,  [10.1016/j.desal.2016.04.030]
18. Chenggang Zhu, Xiangdong Zhu, James P. Landry, Zhaomeng Cui, Quanfu Li, Yongjun Dang, Lan Mi, Fengyun Zheng, Yiyan Fei.  (2016)  Developing an Efficient and General Strategy for Immobilization of Small Molecules onto Microarrays Using Isocyanate Chemistry.  SENSORS,  16  (3): (378).  [PMID:26999137] [10.3390/s16030378]
19. Gaofeng Feng, Hong-Fei Qian, Gang Bai, Yan-Chun Liu, Ling-Ling Hu.  (2016)  Synthesis, characterization, and application of diester/diurethane tethered azo disperse dyes: A new strategy to improve dye's fastness properties.  DYES AND PIGMENTS,  [10.1016/j.dyepig.2016.02.010]
20. Guangdong Zhao, Ping Hu, Shanbao Zhou, Guiqing Chen, Yumin An, Yehong Cheng, Jiadong An, Xinghong Zhang, Wenbo Han.  (2016)  Ordered Silica Nanoparticles Grown on a Three-Dimensional Carbon Fiber Architecture Substrate with Siliconborocarbonitride Ceramic as a Thermal Barrier Coating.  ACS Applied Materials & Interfaces,  [PMID:26799760] [10.1021/acsami.5b12140]
21. Yao Chen, Bin Zhang, Zhe Gao, Chaoqiu Chen, Shichao Zhao, Yong Qin.  (2014)  Functionalization of multiwalled carbon nanotubes with uniform polyurea coatings by molecular layer deposition.  CARBON,  [10.1016/j.carbon.2014.10.090]
22. Jizhao Zou, Tao Liang, Minggui Peng, Peng Liu, Zhe Li, Jiaming Wen, Zhangjian Li, Yusheng Yan, Xin Yu, Xierong Zeng, Junfeng Huang.  (2024)  Construction of oxygen-vacancy-rich 2D nitrogen-doped carbon nanosheets with CoFe@CoFe2O4 heterogeneous interfacial structure for rechargeable Zn–air batteries.  Journal of Energy Storage,  [10.1016/j.est.2024.110815]
23. Dawei Xiang, Manying Zhu, Yuefeng Chen, Shixing Wang, Zhengwu Peng, Dekun Zhang, Likang Fu.  (2024)  Design and synthesis of covalent organic framework based on 2,4,6-triaminopyrimidine for efficient capture of Au(III) ion.  JOURNAL OF MOLECULAR LIQUIDS,  [10.1016/j.molliq.2024.125054]
24. Shiyu Xiao, Yang Cao, Yinhua Wan, Xiaofeng Hang, Jianquan Luo.  (2024)  High-performance polyurea nanofiltration membrane for waste lithium-ion batteries recycling: Leveraging synergistic control of bulk and interfacial monomer diffusion.  JOURNAL OF MEMBRANE SCIENCE,  [10.1016/j.memsci.2024.123405]
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26. Peihang Li, Jiaqi Zhang, Hongfei Huang, Kangyuan Peng, Ziqiang Xu, Xueqin Chen, Bingbing Jiang.  (2024)  Scale-Up Fabrication of Fiber Membrane Based on Nanoporous Polyurea Colloids for Organic Solvents/Water Separation.  ACS Applied Polymer Materials,  [10.1021/acsapm.3c02688]
27. Bo Lin, Wangzhi Chen, Yujie Lei, Xingyu Ma, Jieyao Wang, Lei Li.  (2024)  Solvothermal Preparation of Microporous Polyureas for Au(III) Adsorption.  LANGMUIR,  [PMID:38627239] [10.1021/acs.langmuir.4c00305]
28. Naijie Wang, Xiangqun Chen, Qiu Sun, Ying Song, Tiezhu Xin.  (2023)  Fast Li+ Transport Polyurethane-Based Single-Ion Conducting Polymer Electrolyte with Sulfonamide Side chains in the Hard Segment for Lithium Metal Batteries.  ACS Applied Materials & Interfaces,  [PMID:37552620] [10.1021/acsami.3c06956]
29. Xiaoyi Zhang, Rongqing Chen, Xiaoying Gao, Jinlan Weng, Yunjia Liu, Tian Gui, Shenghong Yang, Dunqing Wang, Xiangshu Chen, Jian Liu.  (2022)  Mechanochemical synthesis of reticular β-cyclodextrin polyurethanes for the decontamination of phenolic micropollutants.  CHEMICAL ENGINEERING JOURNAL,  [10.1016/j.cej.2022.139987]
30. Wen-kui Li, Song Wang, Yong-hong Wang, Yu-zhen Wu, Jia Li, Tian-hua Chai, Kang Wang, GuangYou Chen, Zhiqing Ma.  (2025)  Nanoporous 3D Polyurethane for Toosendanin Adsorption, Encapsulation, and High-Efficient Utilization.  JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY,  [PMID:39932266] [10.1021/acs.jafc.4c09493]
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