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MSE PRO Two-dimensional NiFe Layered Double Oxide (NiFe-LDO) Powder– MSE Supplies LLC

Free Shipping on MSE PRO Online Orders of $500 or More! U.S. Orders Only * Offer Excludes Hazmat Shipments *

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MSE PRO Two-dimensional NiFe Layered Double Oxide (NiFe-LDO) Powder, 500 mg/bottle - MSE Supplies LLC

MSE PRO Two-dimensional NiFe Layered Double Oxide (NiFe-LDO) Powder, 500 mg/bottle

SKU: PO9416

  • $ 42995



MSE PRO™ Two-dimensional NiFe Layered Double Oxide (NiFe-LDO) Powder

Applications:

NiFe layered double oxide (NiFe-LDO) has been recognized as a highly efficient electrocatalyst in lithium-oxygen (Li-O2) batteries, attributed to its exceptional catalytic performance in the oxygen evolution reaction. Additionally, NiFe-LDO primarily consists of NiFe2O4 and NiO phases, exhibiting robust magnetic properties, facilitating easy external magnetic collection of adsorbents. This feature renders it an effective and economically viable adsorbent for the removal of various anionic dyes, with the added advantage of being reusable multiple times.

Store sealed and light-protected at room temperature.

MSE Supplies offers a variety of Layered Double Hydroxide (LDH), Layered Double Oxide (LDO) products as well as 2D materials. Please contact us for more information.

Specifications:

  • SKU#: PO9416
  • Lateral size: 10-30 nm
  • Main contents:
    • O: ~28 wt%
    • Ni: ~58 wt%
    • Fe: ~14 wt%
  • Appearance: Brown powder
  • BET specific surface area: >100 m2/g
  • Purity: >99%
  • Package size: 500 mg/bottle

Reference:

[1] Jiabao Li, Chaozhu Shu, Zhiqun Ran, Minglu Li, Ruixin Zheng, and Jianping Long, Heteroatom-Induced Electronic Structure Modulation of Vertically Oriented Oxygen Vacancy-Rich NiFe Layered Double Oxide Nanoflakes To Boost Bifunctional Catalytic Activity in Li–O2 Battery, ACS Applied Materials & Interfaces 2019 11 (33), 29868-29878.

[2] Intachai, S., Tongchoo, P., Sumanatrakul, P. et al. Efficient and practical adsorption of mixed anionic dyes in aqueous solution by magnetic NiFe-layered double oxide. Korean J. Chem. Eng. 39, 2675–2684 (2022).