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Macroscopic Heterostructure Membrane of Graphene Oxide/Porous Graphene/Graphene Oxide for Selective Separation of Deuterium Water from Natural Water.

Jing LiangXin ZhangTian-Qi LiuXu-Dong GaoWen-Bin LiangWei QiLi-Juan QianZhan LiXi-Meng Chen
Published in: Advanced materials (Deerfield Beach, Fla.) (2022)
Deuterium water (D 2 O) is a strategic material that is widely used in and scientific research and has applications in fields such as nuclear energy generation. However, its content in natural water is extremely low. Therefore, the development of a room-temperature technology for achieving simple, efficient, and low-cost separation of D 2 O from natural water is challenging. In this study, porous graphene (PG) nanosheets with "crater-like" pores are sandwiched between two layers of graphene oxide (GO) membranes to prepare a GO/PG/GO membrane with a macroscopic heterostructure, which can be used to separate D 2 O and H 2 O by pressure-driven filtration. At 25 °C, the rejection rate of D 2 O is ≈97%, the selectivity of H 2 O/D 2 O is ≈35.2, and the excellent performance can be attributed to the difference of transmembrane resistance and flow state of H 2 O and D 2 O in the confinement state. In addition, the D 2 O concentration in natural water is successfully enriched from 0.013% to 0.059% using only one stage, and the membrane exhibits excellent structural and cycling stability. Therefore, this method does not require ultralow temperatures, high energy supplies, complex separation equipment, or the introduction of toxic chemicals. Thus, it can be directly applied to the large-scale industrial production and removal of D 2 O.
Keyphrases
  • room temperature
  • low cost
  • liquid chromatography
  • gold nanoparticles
  • highly efficient
  • solar cells