二(乙酰丙酮)钯(II)

  • ≥99.95% metals basis
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货号 (SKU) 包装规格 是否现货 价格 数量
P293928-500mg
500mg 现货 Stock Image
P293928-2g
2g 现货 Stock Image
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钯催化剂 (77)

基本描述

别名 乙酰丙酮钯(II)盐 | 双(2,4-戊二酮)钯(II) | 乙酰丙酮钯(II),2,4-戊二酸钯(II)
英文别名 Bis(2,4-pentanedionato)palladium(II) | Palladium(II) acetylacetonate | Pd(acac)2 | Acetylacetone Palladium(II) Salt
规格或纯度 ≥99.95% metals basis
英文名称 Palladium acetylacetonate
储存温度 避光,室温,充氩
运输条件 常规运输
产品介绍

产品应用:

(Pd(acac)2)被用于以下研究:

制备单分散CuPd合金纳米颗粒(NPs)的典型高温有机溶液相方案

[(NHC)Pd(acac)L]复合物的制备(其中L=Me,NHC= N-杂环卡宾),这些复合物能有效催化活化芳基溴化物的Heck反应

作为芳基羧酸与芳基卤化物的脱羧交叉偶联反应的催化剂。

Palladium(II) acetylacetonate (Pd(acac)2) is a metal-organic complex. Sublimation of Pd(acac)2 has been investigated by thermogravimetry and XRD. The temperature range for the sublimation of Pd(acac)2, without undergoing thermal decomposition, was determined to be 100-160°C in the presence of inert gas helium.
Application Guide for Palladium Catalyzed Cross-Coupling Reactions.


Product class
M-O, Homogeneous Catalysts, Acetylacetonate Ligands

Reaction type
CH-Activation, Carbonylation, Cyclization, Oligomerization, Oxidation

Chemical properties

Chemical formula

C10H14O4Pd

Empirical formula

[Pd(acac)2]

Molecular weight

304.64

Metal

Pd

Theoretical metal content

35

Physical state

powder

Color

yellow

Metal purity

99.95


名称和识别符

PubChem SID 504763837
EC号 237-859-8
分子类型 小分子
IUPAC Name (Z)-4-hydroxypent-3-en-2-one;palladium
INCHI InChI=1S/2C5H8O2.Pd/c2*1-4(6)3-5(2)7;/h2*3,6H,1-2H3;/b2*4-3-;
InChi Key BABLLCDZHABSRT-FDGPNNRMSA-N
Canonical SMILES CC(=CC(=O)C)O.CC(=CC(=O)C)O.[Pd]
Isomeric SMILES C/C(=C/C(=O)C)/O.C/C(=C/C(=O)C)/O.[Pd]
WGK Germany 2
PubChem CID 5462715
分子量 304.64
Beilstein号 4136188

化学和物理性质

溶解性 Soluble in benzene and chloroform.
敏感性 对光敏感
沸点 300 °C 在 0.1 百帕
熔点 200 - 251 °C
分子量 306.650 g/mol
XLogP3
氢键供体数Hydrogen Bond Donor Count 2
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 306.008 Da
单同位素质量Monoisotopic Mass 306.008 Da
拓扑极表面积Topological Polar Surface Area 74.600 Ų
重原子数Heavy Atom Count 15
形式电荷Formal Charge 0
复杂度Complexity 239.000
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 2
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 2
共价键合单元计数Covalently-Bonded Unit Count 3

安全和危险性(GHS)

象形图 GHS07
信号词 Warning
危险声明

H315: 引起皮肤刺激

H319: 引起严重眼睛刺激

H335: 可能引起呼吸道刺激

H228: 易燃固体

预防措施声明

P261: 避免吸入灰尘/烟雾/气体/雾/蒸汽/喷雾

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。

P280: 戴防护手套/穿防护服/戴防护眼罩/戴防护面具。

P370+P378: 火灾时:使用干砂、干粉或抗醇泡沫灭火。

P210: 远离热源,热表面,火花,明火和其他点火源。 - 禁止抽烟。

P302+P352: 如皮肤沾染:用水充分清洗。

P321: 特殊处理(请参阅此标签上的...)。

P405: 密闭存放

P501: 将内容物/容器处理到。。。

P240: 地面/粘结容器和接收设备

P264: 处理后要彻底洗手。

P271: 仅在室外或通风良好的地方使用。

P241: 使用防爆的[电气/通风/照明/.../]设备。

P304+P340: 如误吸入:将人转移到空气新鲜处,保持呼吸舒适体位。

P403+P233: 存放在通风良好的地方。保持容器密闭。

P362+P364: 脱掉沾污的衣服,清洗后方可重新使用。

P264+P265: 处理后彻底洗手[和…]。不要触摸眼睛。

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。

P319: 如果你感到不适,请寻求医疗帮助。

WGK Germany 2
个人防护装备 dust mask type N95 (US),Eyeshields,Gloves

质量标准

Appearance(P293928) Yellow to yellow-green powder or chucks
Purity(Based On Trace Metals Analysis)
Proton NMR spectrum Conforms to Structure
ICP: Confirms Pd Component Confirmed

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C of A & Other Certificates(BSE/TSE, COO):
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批号(Lot Number) 证书类型 日期 货号
D2522339 分析证书 24-11-06 P293928
D2522340 分析证书 24-11-06 P293928
H2405576 分析证书 24-07-25 P293928
H2405577 分析证书 24-07-25 P293928
I2313484 分析证书 23-09-04 P293928
I2313485 分析证书 23-09-04 P293928
E2329234 分析证书 23-05-10 P293928
E2329236 分析证书 23-05-10 P293928
B2303502 分析证书 22-11-28 P293928
B2303503 分析证书 22-11-28 P293928
B2303504 分析证书 22-11-28 P293928
B2303505 分析证书 22-11-28 P293928
D2306092 分析证书 22-11-28 P293928
G2220056 分析证书 22-07-01 P293928
K2228271 分析证书 22-07-01 P293928
F2204637 分析证书 22-03-24 P293928
F2204638 分析证书 22-03-24 P293928
A2212356 分析证书 21-12-27 P293928
A2212373 分析证书 21-12-27 P293928

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此产品的引用文献

1. Wenjie Xue, Binbin Zhao, Hongxia Liu, Xinqing Chen, Lei Liu.  (2024)  Ultralow Pd bimetallic catalysts boost (de)hydrogenation for reversible H2 storage.  APPLIED CATALYSIS B-ENVIRONMENTAL,  343  (123574).  [10.1016/j.apcatb.2023.123574]
2. Cuicui Wu, Kaifei Tian, Xuan Guo, Yunming Fang.  (2023)  Integrating Fermentation Engineering and Organopalladium Chemocatalysis for the Production of Squalene from Biomass-Derived Carbohydrates as the Starting Material.  Catalysts,  13  (11): (1392).  [10.3390/catal13111392]
3. Guang-Rui Xu, Ning Zhang, Qiyan Sun, Wen Zhang, Zexing Wu, Lei Wang.  (2023)  Self-supportive Pd0.2Ni58Fe30O11.8 nanowires for solar-driven self-powered water/seawater splitting with large current density.  CHEMICAL ENGINEERING JOURNAL,  476  (146778).  [10.1016/j.cej.2023.146778]
4. Cuizhen Yang, Tingyao Wang, Chengcheng Li, Haiyan He, Dongming Liu, Huajie Huang.  (2023)  PdMo Bimetallene Coupled with MXene Nanosheets as Efficient Bifunctional Electrocatalysts for Formic Acid and Methanol Oxidation Reactions.  ACS Applied Materials & Interfaces,  15  (42): (49195–49203).  [PMID:37843990] [10.1021/acsami.3c10789]
5. Juan Miao, Jingmin Wang, Zhen Lv, Xiaoying Feng, Ning Zhang, Xinquan Zhou, Hang Xu, Xuefeng Wei, Shuge Peng.  (2023)  Single-atom Pd loaded on nitrogen-doped carbon as a bifunctional catalyst for the electrochemical degradation of 2,4-dichlorophenol.  Journal of Environmental Chemical Engineering,  11  (111007).  [10.1016/j.jece.2023.111007]
6. Chong Lu, Subrata Panda, Wen Zhu, Yanling Ma, Jianxin Zou.  (2024)  Enhanced hydrogen sorption properties of uniformly dispersed Pd-decorated three-dimensional (3D) Mg@Pd architecture.  INTERNATIONAL JOURNAL OF HYDROGEN ENERGY,  50  (979).  [10.1016/j.ijhydene.2023.08.271]
7. Hongjie Yu, Shaojian Jiang, Wenjie Zhan, Kai Deng, Ziqiang Wang, You Xu, Hongjing Wang, Liang Wang.  (2023)  Hydrogen-intercalation enhanced the anti-CO poisoning ability of palladium-copper metallene for direct formate fuel cells.  Materials Today Physics,  38  (101216).  [10.1016/j.mtphys.2023.101216]
8. Kaiyang Xu, Yu Chen, Hua Yang, Yuyan Gan, Lizhi Wu, Li Tan, Yihu Dai, Yu Tang.  (2024)  Partial hydrogenation of anisole to cyclohexanone in water medium catalyzed by atomically dispersed Pd anchored in the micropores of zeolite.  APPLIED CATALYSIS B-ENVIRONMENTAL,  341  (123244).  [10.1016/j.apcatb.2023.123244]
9. Nan Lu, Bin Liu, Zhengxin Peng, Jing Sui, Xiaofan Zhang, Yuting Ma, Renhong Li, Xiaoqing Yan.  (2024)  Interfacial electronic structure modulation between Pd and N-containing support for efficient formic acid dehydrogenation.  INTERNATIONAL JOURNAL OF HYDROGEN ENERGY,  49  (850).  [10.1016/j.ijhydene.2023.07.317]
10. Fang Wei, Ting Luo, Yan Wang, Lichun Kong, JiuJu Feng, Zhengquan Li, Ji-Qing Lu, Fa Yang.  (2023)  Boosting CO2 electroreduction to formate via in-situ formation of ultrathin Bi nanosheets decorated with monodispersed Pd nanoparticles.  JOURNAL OF CATALYSIS,  424  (50).  [10.1016/j.jcat.2023.05.008]
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12. Lulu Kong, DeZhu Chen, Xiaolong Zhang, Lin Zhou, Yongming Deng, Shaohua Wei.  (2023)  Controllable Fabrication of Hg–Pd–PdO Heterostructures as Efficient Peroxidase Mimics for Carcinoembryonic Antigen Detection.  ACS Applied Nano Materials,  (5): (3618–3626).  [10.1021/acsanm.2c05373]
13. Runfei Xu, Haoyang Huang, Wenjing Wang, Lei Ding, Qiang Lin, Jinbing Li, Yu Zhang, Yongsheng Han, Jianguo Wang, Xiaohua Lu.  (2023)  Direct conversion of water to hydrogen peroxide on single electrode towards partial oxidation of propylene.  CHEMICAL ENGINEERING JOURNAL,  461  (141748).  [10.1016/j.cej.2023.141748]
14. Pengcheng Li, Jingjing Zhu, Hongyu Zhang, Lan Wang, Shulin Wang, Mengting Zhang, Jianping Wu, Lirong Yang, Gang Xu.  (2023)  Preparation of Coupling Catalyst HamZIF-90@Pd@CALB with Tunable Hollow Structure for Efficient Dynamic Kinetic Resolution of 1-Phenylethylamine.  MOLECULES,  28  (3): (922).  [PMID:36770588] [10.3390/molecules28030922]
15. Zemeng Dong, Qiyan Sun, Guang-Rui Xu, Zexing Wu, Yanyan Li, Jianping Lai, Guangjiu Li, Lei Wang.  (2022)  Universal Synthesized Strategy for Amorphous Pd-Based Nanosheets Boosting Ambient Ammonia Electrosynthesis.  Small Methods,  (1): (2201225).  [PMID:36549895] [10.1002/smtd.202201225]
16. Zhijie Zhu, Xu Hu, Xingda An, Mengqi Xiao, Liang Zhang, Chaoran Li, Le He.  (2022)  Photothermal Catalytic CO2 Hydrogenation with High Activity and Tailored Selectivity Over Monodispersed Pd-Ni Nanoalloys.  Chemistry-An Asian Journal,  17  (24): (e202200993).  [PMID:36323636] [10.1002/asia.202200993]
17. Xiaolan Li, Yangqi Huang, Zhenyu Chen, Shuqi Hu, Jinliang Zhu, Panagiotis Tsiakaras, Pei Kang Shen.  (2023)  Novel PtNi nanoflowers regulated by a third element (Rh, Ru, Pd) as efficient multifunctional electrocatalysts for ORR, MOR and HER.  CHEMICAL ENGINEERING JOURNAL,  454  (140131).  [10.1016/j.cej.2022.140131]
18. Chunxue Zhao, Haihong Yu, Zhiming Liu, Haolin Chen, Xiao Ma, Yiqiao Chen, Ao Liu, Huiqing Zhong, Zhouyi Guo.  (2022)  Facile synthesis of Au@palladium oxide nano-sunflowers for ultrasensitive surface-enhanced Raman scattering analysis.  NEW JOURNAL OF CHEMISTRY,  46  (23): (11195-11201).  [10.1039/D2NJ01578A]
19. Yangyang Ren, Baosong Li, Chenhao Lv, Fan Gao, Xiaojing Yang, Lanlan Li, Zunming Lu, Xiaofei Yu, Xinghua Zhang.  (2022)  Defect-rich PtPdCu flower-like nanoframes with enhanced electrocatalytic activity for methanol oxidation.  APPLIED SURFACE SCIENCE,  593  (153404).  [10.1016/j.apsusc.2022.153404]
20. Gongguo Zhang, Yingying Wang, Yanyun Ma, Yiqun Zheng, Haifeng Zhang, Mingyu Tang, Yunqian Dai.  (2023)  Ultrathin samarium-doped palladium nanocrystals with exotic shapes for efficient electrocatalytic ethanol oxidation.  CATALYSIS TODAY,  409  (63).  [10.1016/j.cattod.2022.03.024]
21. Li Zhijun, Leng Leipeng, Lu Xiaowen, Zhang Mingyang, Xu Qian, Horton J. Hugh, Zhu Junfa.  (2022)  Single palladium atoms stabilized by β-FeOOH nanorod with superior performance for selective hydrogenation of cinnamaldehyde.  Nano Research,  15  (4): (3114-3121).  [10.1007/s12274-021-4028-1]
22. Zhijie Zhu, Kai Feng, Chaoran Li, Rui Tang, Mengqi Xiao, Rui Song, Di Yang, Binhang Yan, Le He.  (2021)  Stabilization of Exposed Metal Nanocrystals in High-Temperature Heterogeneous Catalysis.  ADVANCED MATERIALS,  34  (6): (2108727).  [PMID:34816506] [10.1002/adma.202108727]
23. Jingjing Zhu, Huaqiang Chen, Lan Wang, Engang Fu, Jianping Wu, Qilei Zhang, Lirong Yang, Gang Xu.  (2022)  High-efficient dynamic kinetic resolution of amines with a core-shell hollow mesoporous MIL-101@Pd@ZIF-8 nanocatalyst and lipase.  MICROPOROUS AND MESOPOROUS MATERIALS,  329  (111490).  [10.1016/j.micromeso.2021.111490]
24. Ruofan Shen, Yanyan Liu, Hao Wen, Xianli Wu, Zhikun Peng, Sehrish Mehdi, Tao Liu, Huanhuan Zhang, Shuyan Guan, Erjun Liang, Baojun Li.  (2022)  Engineering Vacancy-Atom Ensembles to Boost Catalytic Activity toward Hydrogen Evolution.  Energy & Environmental Materials,  (1): (e12292).  [10.1002/eem2.12292]
25. Zehan Chen, Yue Wang, Jinxiu Wang, Zhangqiang Hu, Wei Teng, Jianwei Fan, Wei-xian Zhang.  (2021)  Enhanced activity and selectivity of electrocatalytic denitrification by highly dispersed CuPd bimetals on reduced graphene oxide.  CHEMICAL ENGINEERING JOURNAL,  416  (129074).  [10.1016/j.cej.2021.129074]
26. Xiaobo Yang, Xili Tong, Xingchen Liu, Kaixi Li, Nianjun Yang.  (2021)  Methanol electrooxidation on core-shell Ag@Pdx catalysts.  ELECTROCHEMISTRY COMMUNICATIONS,  123  (106917).  [10.1016/j.elecom.2021.106917]
27. Tianxing Yang, Yuliang Feng, Rui Ma, Qiang Li, Hong Yan, Yanan Liu, Yufei He, Jeffrey T. Miller, Dianqing Li.  (2021)  Improvement of Selectivity in Acetylene Hydrogenation with Comparable Activity over Ordered PdCu Catalysts Induced by Post-treatment.  ACS Applied Materials & Interfaces,  13  (1): (706–716).  [PMID:33356137] [10.1021/acsami.0c19329]
28. Baining Lin, Yuxin Zhang, Yifan Zhu, Yingping Zou, Yingjie Hu, Xuhong Du, Huasheng Xie, Kang Wang, Yonghua Zhou.  (2020)  Phosphor-doped graphitic carbon nitride-supported Pd as a highly efficient catalyst for styrene hydrogenation.  CATALYSIS COMMUNICATIONS,  144  (106094).  [10.1016/j.catcom.2020.106094]
29. Tao Gan, Yifei Liu, Qian He, Hao Zhang, Xiaohui He, Hongbing Ji.  (2020)  Facile Synthesis of Kilogram-Scale Co-Alloyed Pt Single-Atom Catalysts via Ball Milling for Hydrodeoxygenation of 5-Hydroxymethylfurfural.  ACS Sustainable Chemistry & Engineering,  (23): (8692–8699).  [10.1021/acssuschemeng.0c02065]
30. Guohong Ren, Xichen Zhang, Zhicheng Zhang, Ying Liang, Shishan Wu, Jian Shen.  (2020)  Three-Dimensional PdPtCu Nanoalloys with a Controllable Composition and Spiny Surface for the Enhancement of Ethanol Electrocatalytic Properties.  LANGMUIR,  36  (10): (2584–2591).  [PMID:32090573] [10.1021/acs.langmuir.9b03401]
31. Yu-Xuan Xiao, Jie Ying, Ge Tian, Yong Tao, Hao Wei, Si-Yu Fan, Ze-Hao Sun, Wan-Juan Zou, Jie Hu, Gang-Gang Chang, Weihua Li, Xiao-Yu Yang, Christoph Janiak.  (2019)  Highly dispersed PtPd on graphitic nanofibers and its heavy d-π effect.  APPLIED CATALYSIS B-ENVIRONMENTAL,  259  (118080).  [10.1016/j.apcatb.2019.118080]
32. Gaojie Li, Xiaohong Wang, Liuming Yan, Yan Wang, Zhanying Zhang, Jiaqiang Xu.  (2019)  PdPt Bimetal-Functionalized SnO2 Nanosheets: Controllable Synthesis and its Dual Selectivity for Detection of Carbon Monoxide and Methane.  ACS Applied Materials & Interfaces,  11  (29): (26116–26126).  [PMID:31265225] [10.1021/acsami.9b08408]
33. Huan-Feng Wang, Jun-Feng Li, Xue-Xi Sun, Ji-Jing Xu.  (2019)  Stabilizing electrochemical Li–O2 batteries with a metal-based cathode of PdNi on Ni nonwoven fabric.  Nanoscale,  11  (24): (11513-11520).  [PMID:31038505] [10.1039/C9NR02390A]
34. Huawei Xu, Hui Xu, Zehan Chen, Xianqiang Ran, Jianwei Fan, Wei Luo, Zhenfeng Bian, Wei-xian Zhang, Jianping Yang.  (2019)  Bimetallic PdCu Nanocrystals Immobilized by Nitrogen-Containing Ordered Mesoporous Carbon for Electrocatalytic Denitrification.  ACS Applied Materials & Interfaces,  11  (4): (3861–3868).  [PMID:30605308] [10.1021/acsami.8b17880]
35. Nan Wu, Bing Wang, Yingde Wang.  (2018)  Enhanced mechanical properties of amorphous SiOC nanofibrous membrane through in situ embedding nanoparticles.  JOURNAL OF THE AMERICAN CERAMIC SOCIETY,  101  (10): (4763-4772).  [10.1111/jace.15732]
36. Jiarong He, Haoxiang Zhong, Lingzhi Zhang.  (2017)  Water-soluble binder PAALi with terpene resin emulsion as tackifier for LiFePO4 cathode.  JOURNAL OF APPLIED POLYMER SCIENCE,  135  (14): (46132).  [10.1002/app.46132]
37. Xiao Fang, Yanchun Shi, Kejing Wu, Junmei Liang, Yulong Wu, Mingde Yang.  (2017)  Upgrading of palmitic acid over MOF catalysts in supercritical fluid of n-hexane.  RSC Advances,  (64): (40581-40590).  [10.1039/C7RA07239B]
38. Nan Wu, Lynn Yuqin Wan, Yingde Wang, Frank Ko.  (2017)  Conversion of hydrophilic SiOC nanofibrous membrane to robust hydrophobic materials by introducing palladium.  APPLIED SURFACE SCIENCE,  425  (750).  [10.1016/j.apsusc.2017.07.098]
39. Jun Jiang, Han Gao, Shu Lu, Xing Zhang, Chu-Ya Wang, Wei-Kang Wang, Han-Qing Yu.  (2017)  Ni–Pd core–shell nanoparticles with Pt-like oxygen reduction electrocatalytic performance in both acidic and alkaline electrolytes.  Journal of Materials Chemistry A,  (19): (9233-9240).  [10.1039/C7TA01754E]
40. Yuzhen Zhu, Zaixiang Xu, Wenya Jiang, Shuxian Zhong, Leihong Zhao, Song Bai.  (2017)  Engineering on the edge of Pd nanosheet cocatalysts for enhanced photocatalytic reduction of CO2 to fuels.  Journal of Materials Chemistry A,  (6): (2619-2628).  [10.1039/C6TA10039B]
41. Feng Jiang, Jian Cai, Bing Liu, Yuebing Xu, Xiaohao Liu.  (2016)  Particle size effects in the selective hydrogenation of cinnamaldehyde over supported palladium catalysts.  RSC Advances,  (79): (75541-75551).  [10.1039/C6RA17000E]
42. Li-Ping Mei, Jiu-Ju Feng, Liang Wu, Jia-Ying Zhou, Jian-Rong Chen, Ai-Jun Wang.  (2015)  Novel phenol biosensor based on laccase immobilized on reduced graphene oxide supported palladium–copper alloyed nanocages.  BIOSENSORS & BIOELECTRONICS,  74  (347).  [PMID:26159155] [10.1016/j.bios.2015.06.060]
43. Zhang Xuejun, Zhang Peipei, Yu Hongbo, Ma Zhen, Zhou Shenghu.  (2015)  Mesoporous KIT-6 Supported Pd–M x O y (M = Ni, Co, Fe) Catalysts with Enhanced Selectivity for p-Chloronitrobenzene Hydrogenation.  CATALYSIS LETTERS,  145  (3): (784-793).  [10.1007/s10562-015-1480-0]
44. Jing-Jing Lv, Shan-Shan Li, Ai-Jun Wang, Li-Ping Mei, Jiu-Ju Feng, Jian-Rong Chen, Zhaojiang Chen.  (2014)  One-pot synthesis of monodisperse palladium–copper nanocrystals supported on reduced graphene oxide nanosheets with improved catalytic activity and methanol tolerance for oxygen reduction reaction.  JOURNAL OF POWER SOURCES,  269  (104).  [10.1016/j.jpowsour.2014.07.036]
45. Jie-Ning Zheng, Li-Li He, Fang-Yi Chen, Ai-Jun Wang, Meng-Wei Xue, Jiu-Ju Feng.  (2014)  A facile general strategy for synthesis of palladium-based bimetallic alloyed nanodendrites with enhanced electrocatalytic performance for methanol and ethylene glycol oxidation.  Journal of Materials Chemistry A,  (32): (12899-12906).  [10.1039/C4TA01647E]
46. Xu Ji-Jing, Wang Zhong-Li, Xu Dan, Zhang Lei-Lei, Zhang Xin-Bo.  (2013)  Tailoring deposition and morphology of discharge products towards high-rate and long-life lithium-oxygen batteries.  Nature Communications,  (1): (1-10).  [PMID:24052126] [10.1038/ncomms3438]

参考文献

1. Wenjie Xue, Binbin Zhao, Hongxia Liu, Xinqing Chen, Lei Liu.  (2024)  Ultralow Pd bimetallic catalysts boost (de)hydrogenation for reversible H2 storage.  APPLIED CATALYSIS B-ENVIRONMENTAL,  343  (123574).  [10.1016/j.apcatb.2023.123574]
2. Cuicui Wu, Kaifei Tian, Xuan Guo, Yunming Fang.  (2023)  Integrating Fermentation Engineering and Organopalladium Chemocatalysis for the Production of Squalene from Biomass-Derived Carbohydrates as the Starting Material.  Catalysts,  13  (11): (1392).  [10.3390/catal13111392]
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