Ultrafine nanoporous aluminum by electrolytic dealloying of aluminum-magnesium alloys in glyme-based electrolytes with recovery of sacrificial magnesium

被引:4
|
作者
Lee, Timothy [1 ]
Koh, Hyeongjun [1 ]
Ng, Alexander K. [1 ]
Liu, Jiaxin [1 ]
Stach, Eric A. [1 ]
Detsi, Eric [1 ]
机构
[1] Univ Penn, Dept Mat Sci & Engn, Philadelphia, PA 19104 USA
基金
美国国家科学基金会;
关键词
Metal fuel; Air-free synthesis; Electrolytic dealloying; Nanoporous aluminum; Recovery of sacrificial materials; HYDROGEN GENERATION; PURE WATER; HYDROLYSIS; ROUTE; ZN;
D O I
10.1016/j.scriptamat.2022.114959
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Air-free electrolytic dealloying using non-aqueous electrolytes is a sustainable method for creating nanoporous Al (NP-Al) with highly reactive nanoscale-sized ligaments from Al-Mg parent alloys while simultaneously recovering the sacrificial Mg. However, this synthesis strategy is limited in versatility by the low number of available non-aqueous electrolytes that can conduct Mg ions and has so far only been proven to work with all-phenyl complex (APC) electrolyte derived from in situ reaction between two equivalents of Lewis base C6H5ClMg and one equivalent of Lewis acid AlCl3 in tetrahydrofuran (THF) solvent. Here we demonstrated that a new electrolyte consisting of MgCl2/AlCl3/Mg(TFSI)(2) (or MACT) in glyme-based solvents recently introduced in the Mg-ion battery community can also be used to create NP-Al. This alternative electrolyte exhibits higher electrochemical performance than APC and can create ultrafine NP-Al with approximate to 6-14 nm ligament size, which is smaller than the approximate to 10-20 nm ligament size commonly achieved using APC.
引用
下载
收藏
页数:5
相关论文
共 50 条
  • [1] Ultrafine nanoporous aluminum by electrolytic dealloying of aluminum-magnesium alloys in glyme-based electrolytes with recovery of sacrificial magnesium
    Lee, Timothy
    Koh, Hyeongjun
    Ng, Alexander K.
    Liu, Jiaxin
    Stach, Eric A.
    Detsi, Eric
    SCRIPTA MATERIALIA, 2022, 221
  • [2] PULSE HARDENING OF ALUMINUM AND ALUMINUM-MAGNESIUM ALLOYS
    GARSTKA, E
    RUSSIAN ENGINEERING JOURNAL, 1980, 60 (12): : 51 - 52
  • [3] DYNAMIC RECRYSTALLIZATION IN ALUMINUM-MAGNESIUM ALLOYS
    SHEPPARD, TJ
    JOURNAL OF METALS, 1984, 36 (12): : 87 - 87
  • [4] THE DEFORMATION OF COMMERCIAL ALUMINUM-MAGNESIUM ALLOYS
    LLOYD, DJ
    METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1980, 11 (08): : 1287 - 1294
  • [5] Deposition of aluminum-magnesium alloys from electrolytes containing organo-aluminum complexes
    Lehmkuhl, H
    Mehler, K
    Reinhold, B
    Bongard, H
    Tesche, B
    ADVANCED ENGINEERING MATERIALS, 2001, 3 (06) : 412 - 417
  • [6] Preparation of aluminum-magnesium alloys from magnesium oxide
    Yang, Shao-Hua
    Ban, Yun-Gang
    Guo, Yu-Hua
    Qiu, Zhu-Xian
    Dongbei Daxue Xuebao/Journal of Northeastern University, 2007, 28 (06): : 839 - 842
  • [7] On preparation of aluminum-magnesium alloys form magnesium oxide
    Yang, Shaohua
    Yang, Fengli
    Wang, Zhaowen
    Gao, Bingliang
    Shi, Zhongning
    Wu, Youwei
    Ma, Chenggui
    Mao, Jihong
    Ma, Shaoxian
    Lue, Dingxiong
    PROCEEDINGS OF 2007 NON-GRID-CONNECTED WIND POWER SYSTEMS, 2007, : 313 - 319
  • [8] The Preparation Method of Aluminum-magnesium Alloys
    Zhu, Shan-Shan
    Kan, Hong-Min
    Feng, Xiao-Jun
    Zhang, Ning
    Sun, Hong
    PROCEEDINGS OF THE 2ND ANNUAL INTERNATIONAL CONFERENCE ON ADVANCED MATERIAL ENGINEERING (AME 2016), 2016, 85 : 299 - 305
  • [9] Homogenization of Aluminum-Magnesium Alloys.
    Pawloski, Andrzej
    Dukiet-Zawadzka, Barbara
    Orman, Marian
    Ciach, Ryszard
    Archiwum Hutnictwa, 1979, 24 (01): : 79 - 93
  • [10] HYDROGEN AND POROSITY IN ALUMINUM-SILICON AND ALUMINUM-MAGNESIUM ALLOYS .2. ALUMINUM-MAGNESIUM ALLOYS AND DISCUSSION ON PORE FORMATION
    CHEN, XG
    ENGLER, S
    METALL, 1991, 45 (12): : 1225 - 1231