Ion-Exchanging Graphenic Nanochannels for Macroscopic Osmotic Energy Harvesting

被引:5
作者
Nagar, Ankit [1 ,2 ]
Islam, Md Rabiul [3 ]
Joshua, Kartheek [3 ]
Gupte, Tanvi [3 ]
Jana, Sourav Kanti [3 ]
Manna, Sujan [3 ]
Thomas, Tiju [4 ]
Pradeep, Thalappil [3 ,5 ]
机构
[1] DST Unit Nanosci, Dept Chem, Themat Unit Excellence, Chennai, India
[2] Indian Inst Technol Madras, Dept Met & Mat Engn, Chennai 600036, India
[3] Indian Inst Technol Madras, Dept Chem, DST Unit Nanosci, Themat Unit Excellence, Chennai 600036, India
[4] Indian Inst Technol Madras, Dept Met & Mat Engn, Chennai 600036, India
[5] Indian Inst Technol Madras, Chennai 600036, India
关键词
reduced graphene oxide; electrochemistry; ion transport; osmotic energy harvesting; pH sensitivity; HIGHLY EFFICIENT; ATOMIC CHARGES; GRAPHITE OXIDE; TRANSPORT; MEMBRANES; POWER; GENERATION; HYDRATION; OSMOSIS;
D O I
10.1021/acssuschemeng.2c04138
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The Gibbs free energy difference between seawater and river water can be tapped by selective ion transport across charged nanochannels, referred to as reverse electrodialysis (RED). However, existing single pore and micro/nanofluidic RED systems have shown poor prospects for scalability and practical implementation. Herein, we present a macroscopic RED system, utilizing a cation-selective membrane or an anion-selective membrane. The membranes comprise reduced graphene oxide (rGO) nanosheets decorated uniformly with TiO2 nanoparticles. The nanosheets are covalently functionalized with polystyrene (PS) and subsequently linked to sulfonate or quaternary amine functional groups to obtain cation and anion selectivity, respectively. The membranes show excellent ion transport properties along with high power densities demonstrated under artificial salinity gradients. The cation-exchange membrane (CEM) delivered a power density of 448.7 mW m-2 under a 500-fold concentration gradient, while the anion-exchange membrane (AEM) produced a substantial power output of 177.8 mW m-2 under a similar gradient. The efficiencies ranged from 10.6% to 42.3% for CEM and from 9.7% to 46.1% in the case of AEM. Testing under varying pH conditions revealed higher power output under acidic conditions and substantial power output across the entire pH range, rendering them practically viable for sustainable energy harvesting in acidic and alkaline wastewaters.
引用
收藏
页码:15082 / 15093
页数:12
相关论文
共 50 条
  • [31] Enhanced osmotic energy conversion in staircase nanochannels: Effects of shape and surface charge
    Li, Changzheng
    Liao, Mengzhen
    Li, Zhenquan
    Rui, Tao
    He, Fuyuan
    Dai, Jingying
    DESALINATION, 2025, 602
  • [32] Giant Osmotic Energy Conversion through Vertical-Aligned Ion-Permselective Nanochannels in Covalent Organic Framework Membranes
    Cao, Li
    Chen, I-Chun
    Chen, Caifing
    Shinde, Digambar B.
    Liu, Xiaowei
    Li, Zhen
    Zhou, Zongyao
    Zhang, Yuting
    Han, Yu
    Lai, Zhiping
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2022, 144 (27) : 12400 - 12409
  • [33] Ultramicrotomy-Assisted Fabrication of Nanochannels for Efficient Ion Transport and Energy Generation
    Bhardwaj, Ankit
    Gogoi, Raj Kumar
    Howard, William Joshua
    Tillotson, Evan
    Goutham, Solleti
    You, Yi
    Hashimoto, Teruo
    Janzen, Eli
    Edgar, James H.
    Haigh, Sarah J.
    Keerthi, Ashok
    Radha, Boya
    ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (39)
  • [34] Zwitterionic Gradient Double-Network Hydrogel Membranes with Superior Biofouling Resistance for Sustainable Osmotic Energy Harvesting
    Huang, Kang-Ting
    Hung, Wen-Hsin
    Su, Yu-Chun
    Tang, Fu-Cheng
    Linh, Lam Dieu
    Huang, Chun-Jen
    Yeh, Li-Hsien
    ADVANCED FUNCTIONAL MATERIALS, 2023, 33 (19)
  • [35] Harvesting blue energy: pH-regulated nanochannels inspired by carbon nanostructures
    Khatibi, Mahdi
    Mojavezi, Amirhosein
    Pourjafarabadi, Esmaiel
    PHYSICS OF FLUIDS, 2023, 35 (10)
  • [36] Nanofiber-reinforced clay-based 2D nanofluidics for highly efficient osmotic energy harvesting
    Qin, Runan
    Tang, Jiadong
    Wu, Congrong
    Zhang, Qianqian
    Xiao, Tianliang
    Liu, Zhaoyue
    Jin, Yuhong
    Liu, Jingbing
    Wang, Hao
    NANO ENERGY, 2022, 100
  • [37] Negative space charge modulated ion transport through PEDOT:PSS hydrogels integrating nanofluidic channels for highly efficient osmotic energy harvesting
    Zhu, Rui
    Sun, Peng
    Cui, Guofeng
    Yu, Yaoguang
    Ke, Shaojun
    Zhao, Jie
    JOURNAL OF MATERIALS CHEMISTRY A, 2024, 12 (24) : 14559 - 14568
  • [38] Biomimetic Nacre-Like Silk-Crosslinked Membranes for Osmotic Energy Harvesting
    Xin, Weiwen
    Xiao, Hongyan
    Kong, Xiang-Yu
    Chen, Jianjun
    Yang, Linsen
    Niu, Bo
    Qian, Yongchao
    Teng, Yunfei
    Jiang, Lei
    Wen, Liping
    ACS NANO, 2020, 14 (08) : 9701 - 9710
  • [39] Bio-inspired Nanocomposite Membranes for Osmotic Energy Harvesting
    Chen, Cheng
    Liu, Dan
    He, Li
    Qin, Si
    Wang, Jiemin
    Razal, Joselito M.
    Kotov, Nicholas A.
    Lei, Weiwei
    JOULE, 2020, 4 (01) : 247 - 261
  • [40] Electricity Generation with Sodium Alginate Hydrogel for Osmotic Energy Harvesting
    Pei, Junxian
    Chen, Guopeng
    Li, Zining
    Zhou, Zuwei
    Chen, Aofei
    Xie, Shangzhen
    Jiang, Xingchi
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2023, 62 (50) : 21666 - 21672