Carbothermal Diffusion Reaction Synthesis of CrN/carbon Nanofiber for Efficient Electrosorption of Fluoride Ions from Water

Xuran Yang , Hao Zhang , Jiamin Gao , Yiyuan Yao , Yujun Zhou , Junwen Qi , Yue Yang , Zhigao Zhu , Jiansheng Li

Advanced Fiber Materials ›› 2024, Vol. 6 ›› Issue (6) : 1969 -1979.

PDF
Advanced Fiber Materials ›› 2024, Vol. 6 ›› Issue (6) : 1969 -1979. DOI: 10.1007/s42765-024-00465-x
Research Article

Carbothermal Diffusion Reaction Synthesis of CrN/carbon Nanofiber for Efficient Electrosorption of Fluoride Ions from Water

Author information +
History +
PDF

Abstract

Development of novel electrode materials with the integration of structural and compositional merits can essentially improve the electrosorption performance. Herein, we demonstrate a new strategy, named as carbothermal diffusion reaction synthesis (CDRS), to fabricate binder-free CrN/carbon nanofiber electrodes for efficient electrosorption of fluoride ions from water. The CDRS strategy involves electrospinning MIL-101(Cr) particles with polyacrylonitrile (PAN) to form one-dimensional nanofiber, followed by spatial-confined pyrolysis process in which the nitridation reaction occurred between nitrogen element from PAN and chromium element from MIL-101(Cr), resulting macroscopic, free-standing electrodes with well dispersed ultrafine CrN nanoparticles on porous nitrogen enriched carbon matrix. As expected, the F adsorption capacity reached 47.67 mg g−1 and there was no decrease in F removal after 70 adsorption regenerations in 50 mg L−1 F solution at 1.2 V. The adsorption mechanism of F was explored by X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT). The enhanced F adsorption capacity was achieved by the reversible Cr4+/Cr3+ redox pair provided by CrN and the electrical double layer capacitance produced by carbon skeleton. This study provides guidance on synergistic modulation of shaping and composition optimization of novel functional materials for electrosorption, catalysis, and supercapacitor applications.

Graphical abstract

Cite this article

Download citation ▾
Xuran Yang, Hao Zhang, Jiamin Gao, Yiyuan Yao, Yujun Zhou, Junwen Qi, Yue Yang, Zhigao Zhu, Jiansheng Li. Carbothermal Diffusion Reaction Synthesis of CrN/carbon Nanofiber for Efficient Electrosorption of Fluoride Ions from Water. Advanced Fiber Materials, 2024, 6(6): 1969-1979 DOI:10.1007/s42765-024-00465-x

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

PodgorskiJ, BergM. Global analysis and prediction of fluoride in groundwater. Nat Commun, 2022, 13: 4232

[2]

LacsonCFZ, LuMC, HuangYH. Fluoride-containing water: a global perspective and a pursuit to sustainable water defluoridation management—an overview. J Clean Prod, 2021, 280 124236

[3]

KabirH, GuptaAK, TripathyS. Fluoride and human health: Systematic appraisal of sources, exposures, metabolism, and toxicity. Crit Rev Environ Sci Technol, 2019, 50: 1116

[4]

YadavKK, KumarS, PhamQB, GuptaN, RezaniaS, KamyabH, YadavS, VymazalJ, KumarV, TriDQ, TalaiekhozaniA, PrasadS, ReeceLM, SinghN, MauryaPK, ChoJ. Fluoride contamination, health problems and remediation methods in Asian groundwater: a comprehensive review. Ecotoxicol Environ Saf, 2019, 182 109362

[5]

WHO. Guidelines for drinking-water quality, 4th edition. WHO Chron, 2011, 38: 104

[6]

RenC, ZhouM, LiuZ, LiangL, LiX, LuX, WangH, JiJ, PengL, HouG, LiW. Enhanced fluoride uptake by layered double hydroxides under alkaline conditions: solid-state NMR evidence of the role of surface >MgOH sites. Environ Sci Technol, 2021, 55: 15082

[7]

GuanC, XuZ, ZhuH, LvX, LiuQ. Insights into the mechanism of fluoride adsorption over different crystal phase alumina surfaces. J Hazard Mater, 2022, 423 127109

[8]

QiuY, RenL, XiaL, ShaoJ, ZhaoY, Van der BruggenB. Investigation of fluoride and silica removal from semiconductor wastewaters with a clean coagulation-ultrafiltration process. Chem Eng J, 2022, 438 135562

[9]

ChenX, WanC, YuR, MengL, WangD, ChenW, DuanT, LiL. A novel carboxylated polyacrylonitrile nanofibrous membrane with high adsorption capacity for fluoride removal from water. J Hazard Mater, 2021, 411 125113

[10]

HeJ, ChenK, CaiX, LiY, WangC, ZhangK, JinZ, MengF, WangX, KongL, LiuJ. A biocompatible and novelly-defined Al-HAP adsorption membrane for highly effective removal of fluoride from drinking water. J Colloid Interface Sci, 2017, 490: 97

[11]

AliaskariM, SchäferAI. Nitrate, arsenic and fluoride removal by electrodialysis from brackish groundwater. Water Res, 2021, 190 116683

[12]

WangJ, YuanJ, GaoH, YuF, MaJ. Recent advances on capacitive deionization for defluorination: from electrode materials to engineering application. Chem Eng J, 2024, 480 147986

[13]

ZhangH, LiX, XiaoC, XieJ, YanX, WangC, ZhouY, QiJ, ZhuZ, SunX, LiJ. Enhanced selective electrosorption of Pb2+ from complex water on covalent organic framework-reduced graphene oxide nanocomposite. Sep Purif Technol, 2022, 302 122147

[14]

LiuY, WangK, XuX, EidK, AbdullahAM, PanL, YamauchiY. Recent advances in faradic electrochemical deionization: system architectures versus electrode materials. ACS Nano, 2021, 15: 13924

[15]

WangG, YanT, ZhangJ, ShiL, ZhangD. Trace-Fe-enhanced capacitive deionization of saline water by boosting electron transfer of electro-adsorption sites. Environ Sci Technol, 2020, 54: 8411

[16]

SunJ, ZhangC, SongZ, WaiteTD. Boron removal from reverse osmosis permeate using an electrosorption process: feasibility, kinetics, and mechanism. Environ Sci Technol, 2022, 56: 10391

[17]

DongQ, YangD, LuoL, HeQ, CaiF, ChengS, ChenY. Engineering porous biochar for capacitive fluorine removal. Sep Purif Technol, 2021, 257 117932

[18]

WuJ, ChenSS, YuT, WuKCW, HouC. Effective electrochemically controlled removal of fluoride ions using electrodeposited polyaniline-carbon nanotube composite electrodes. Sep Purif Technol, 2021, 254 117561

[19]

ZhangX, LiY, YangZ, YangP, WangJ, ShiM, YuF, MaJ. Industrially-prepared carbon aerogel for excellent fluoride removal by membrane capacitive deionization from brackish groundwaters. Sep Purif Technol, 2022, 297 121510

[20]

DuJ, XingW, YuJ, FengJ, TangL, TangW. Synergistic effect of intercalation and EDLC electrosorption of 2D/3D interconnected architectures to boost capacitive deionization for water desalination via MoSe2/mesoporous carbon hollow spheres. Water Res, 2023, 235 119831

[21]

KangH, ZhangD, ChenX, ZhaoH, YangD, LiY, BaoM, WangZ. Preparation of MOF/polypyrrole and flower-like MnO2 electrodes by electrodeposition: high-performance materials for hybrid capacitive deionization defluorination. Water Res, 2023, 229 119441

[22]

WangG, YanT, ShenJ, ZhangJ, ZhangD. Capacitive removal of fluoride ions via creating multiple capture sites in a modulatory heterostructure. Environ Sci Technol, 2021, 55: 11979

[23]

JiaoL, WangJ, JiangH. Microenvironment modulation in metal-organic framework-based catalysis. Acc Mater Res, 2021, 2: 327

[24]

WuC, ZhaoM. Incorporation of molecular catalysts in metal-organic frameworks for highly efficient heterogeneous catalysis. Adv Mater, 2017, 29: 1605446

[25]

YeR, MaL, MaoJ, WangX, HongX, GalloA, MaY, LuoW, WangB, ZhangR, DuyarMS, JiangZ, LiuJ. A Ce-CuZn catalyst with abundant Cu/Zn-OV-Ce active sites for CO2 hydrogenation to methanol. Nat Commun, 2024, 15: 2159

[26]

YaoS, RamakrishnaS, ChenG. Recent advances in metal-organic frameworks based on electrospinning for energy storage. Adv Fiber Mater, 2023, 5: 1592

[27]

XuX, EguchiM, AsakuraY, PanL, YamauchiY. Metal–organic framework derivatives for promoted capacitive deionization of oxygenated saline water. Energy Environ Sci, 1815, 2023: 16

[28]

YaoY, WangC, YanX, ZhangH, XiaoC, QiJ, ZhuZ, ZhouY, SunX, DuanX, LiJ. Rational regulation of Co–N–C coordination for high-efficiency generation of 1O2 toward nearly 100% selective degradation of organic pollutants. Environ Sci Technol, 2022, 56: 8833

[29]

ZhangW, ZhangP, LiF, HeM, GongA, ZhangW, MoX, LiK. From MOF to Al/N-doped porous carbon: CREATING multiple capture sites for efficient capacitive deionization defluorination. Desalination, 2022, 543 116090

[30]

JiD, LinY, GuoX, RamasubramanianB, WangR, RadacsiN, JoseR, QinX, RamakrishnaS. Electrospinning of nanofibres. Nat Rev Methods Primers, 2024, 4: 1

[31]

XueJ, WuT, DaiY, XiaY. Electrospinning and electrospun nanofibers: methods, materials, and applications. Chem Rev, 2019, 119: 5298

[32]

LiuR, HouL, YueG, LiH, ZhangJ, LiuJ, MiaoB, WangN, BaiJ, CuiZ, LiuT, ZhaoY. Progress of fabrication and applications of electrospun hierarchically porous nanofibers. Adv Fiber Mater, 2022, 4: 604

[33]

PengR, ZhangS, YaoY, WangJ, ZhuX, JiangR, ZhangJ, ZhangW, WangC. MOFs meet electrospinning: new opportunities for water treatment. Chem Eng J, 2023, 453 139669

[34]

FengR, LiD, YangH, LiC, ZhaoY, WaterhouseGIN, ShangL, ZhangT. Epitaxial ultrathin Pt atomic layers on Crn nanoparticles catalysts. Adv Mater, 2023, 36: 2309251

[35]

FereyG, Mellot-DraznieksC, SerreC, MillangeF, DutourJ, SurbleS, MargiolakiI. A chromium terephthalate-based solid with unusually large pore volumes and surface area. Science, 2005, 309: 2040

[36]

KayalS, ChakrabortyA. Activated carbon (type Maxsorb-III) and MIL-101(Cr) metal organic framework based composite adsorbent for higher CH4 storage and CO2 capture. Chem Eng J, 2018, 334: 780

[37]

YuF, ZhangX, LiuP, ChenB, MaJ. “Blockchain-like” MIL-101(Cr)/Carbon black electrodes for unprecedented defluorination by capacitive deionization. Small, 2022, 19: 2205619

[38]

Le OuayB, BoudotM, KitaoT, YanagidaT, KitagawaS, UemuraT. Nanostructuration of PEDOT in porous coordination polymers for tunable porosity and conductivity. J Am Chem Soc, 2016, 138: 10088

[39]

LongJ, DaiW, ZouM, LiB, ZhangS, YangL, MaoJ, MaoP, LuoS, LuoX. Chemical conversion of CO2 into cyclic carbonates using a versatile and efficient all-in-one catalyst integrated with DABCO ionic liquid and MIL-101(Cr). Microporous Mesoporous Mater, 2021, 318 111027

[40]

DingW, DingS, MengZ, WangX. Hierarchically structural polyacrylonitrile/MIL-101(Cr) nanofibrous membranes with super adsorption performance for indoxyl sulfate. J Appl Polym Sci, 2022, 140 e53399

[41]

JavidM, AbbasA, FaridA, XuH, SammedKA, IrfanM, RaufA, DongX, PanL. Arc discharge process for in-situ growth of thermally stable single-phase Cr3C2@C NCs for photocatalytic applications. J Mater Res, 2022, 37: 909

[42]

YangX, ZhangH, GaoJ, YaoY, LiX, ZhouY, QiJ, YangY, ZhuZ, LiJ. Iron-containing biochar derived from dyeing sludge for high-performance capacitive deionization. Sep Purif Technol, 2024, 330 125432

[43]

PetkovK, KrastevV, MarinovaT. XPS analysis of thin chromium films. Surf Interface Anal, 1992, 18: 487

[44]

GrohmannI, KemnitzE. Curve fitting of Cr 2p photoelectron spectra of Cr2O3 and CrF3. Surf Interface Anal, 1995, 23: 887

[45]

MichauA, MauryF, SchusterF, BoichotR, PonsM, MonsifrotE. Chromium carbide growth at low temperature by a highly efficient DLI-MOCVD process in effluent recycling mode. Surf Coat Technol, 2017, 332: 96

[46]

ChoiC, AshbyDS, ButtsDM, DeBlockRH, WeiQ, LauJ, DunnB. Achieving high energy density and high power density with pseudocapacitive materials. Nat Rev Mater, 2019, 5: 5

[47]

ChoiS, ChangB, KimS, LeeJ, YoonJ, ChoiJW. Battery electrode materials with omnivalent cation storage for fast and charge-efficient ion removal of asymmetric capacitive deionization. Adv Funct Mater, 2018, 28: 1802665

[48]

LiJ, ZhangS, ZhangS, AnC, CaoL. Templated constructing honeycomb-like V5S8@C anode with multi-scale interfacial coactions and high pseudocapacitive contribution for enhanced potassium storage capability. J Alloys Compd, 2021, 851 156920

[49]

BaiZ, HuC, LiuH, QuJ. Selective adsorption of fluoride from drinking water using NiAl-layered metal oxide film electrode. J Colloid Interface Sci, 2019, 539: 146

[50]

WangC, QiuY, WangC, XuY, RenL-F, ShaoJ. Efficient groundwater defluorination over a wide concentration gradient through capacitive deionization with a three-layer structured membrane coating electrode. J Hazard Mater, 2024, 462 132703

[51]

XiaoF, ZhouY, ZhangH, WuY. Preparation of manganese-doped cubic carbon electrode based on ZIF-8 and its capacitive deionization performance for fluoride removal. Sep Purif Technol, 2024, 328 125046

[52]

ZhengS, LiB, YuanZ, YangJE, ZhangJ, ZhongL, ZhengY. Zinc oxide nanosheet decorated self-supporting hierarchical porous wood carbon electrode for efficient capacitive deionization defluorination. Sep Purif Technol, 2023, 317 123830

[53]

MengY, ChenG, ShiL, LiuH, ZhangD. Operando fourier transform infrared investigation of cathode electrolyte interphase dynamic reversible. evolution on Li1.2Ni0.2Mn0.6O2. ACS Appl Mater Interfaces, 2019, 11: 45108

Funding

National Natural Science Foundation of China(22276096)

RIGHTS & PERMISSIONS

Donghua University, Shanghai, China

AI Summary AI Mindmap
PDF

233

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/