Highly Efficient Osmotic Energy Harvesting in Charged Boron‐Nitride‐Nanopore Membranes

Recent studies of the high energy‐conversion efficiency of the nanofluidic platform have revealed the enormous potential for efficient exploitation of electrokinetic phenomena in nanoporous membranes for clean‐energy harvesting from salinity gradients. Here, nanofluidic reverse electrodialysis (NF‐R...

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Bibliographic Details
Published inAdvanced functional materials Vol. 31; no. 15
Main Authors Pendse, Aaditya, Cetindag, Semih, Rehak, Pavel, Behura, Sanjay, Gao, Haiqi, Nguyen, Ngoc Hoang Lan, Wang, Tongshuai, Berry, Vikas, Král, Petr, Shan, Jerry, Kim, Sangil
Format Journal Article
LanguageEnglish
Published Hoboken Wiley Subscription Services, Inc 01.04.2021
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Summary:Recent studies of the high energy‐conversion efficiency of the nanofluidic platform have revealed the enormous potential for efficient exploitation of electrokinetic phenomena in nanoporous membranes for clean‐energy harvesting from salinity gradients. Here, nanofluidic reverse electrodialysis (NF‐RED) consisting of vertically aligned boron‐nitride‐nanopore (VA‐BNNP) membranes is presented, which can efficiently harness osmotic power. The power density of the VA‐BNNP reaches up to 105 W m−2, which is several orders of magnitude higher than in other nanopores with similar pore sizes, leading to 165 mW m−2 of net power density (i.e., power per membrane area). Low‐pressure chemical vapor deposition technology is employed to uniformly deposit a thin BN layer within 1D anodized alumina pores to prepare a macroscopic VA‐BNNP membrane with a high nanopore density, ≈108 pores cm−2. These membranes can resolve fundamental questions regarding the ion mobility, liquid transport, and power generation in highly charged nanopores. It is shown that the transference number in the VA‐BNNP is almost constant over the entire salt concentration range, which is different from other nanopore systems. Moreover, it is also demonstrated that the BN deposition on the nanopore channels can significantly enhance the diffusio‐osmosis velocity by two orders of magnitude at a high salinity gradient, resulting in a huge increase in power density. The vertically aligned boron nitride nanopore shows a high osmotic power generation efficiency of ≈100 W m−2, which is significantly higher than that of most macro‐scale systems. Experimental studies and molecular simulations are employed to demonstrate that the high surface charge of the boron nitride results in enhanced diffusio‐osmotic flows at a high salinity gradient, resulting in a huge increase in efficiency and power density.
ISSN:1616-301X
1616-3028
DOI:10.1002/adfm.202009586