Acta Phys. -Chim. Sin. ›› 2025, Vol. 41 ›› Issue (10): 100120.doi: 10.1016/j.actphy.2025.100120
• REVIEW • Previous Articles Next Articles
Qi Wang1,2, Yuqing Liu1, Jiefei Wang1, Yuan-Yuan Ma1,*(
), Jing Du1,*(
), Zhan-Gang Han1,*(
)
Received:2025-04-16
Revised:2025-05-25
Accepted:2025-06-11
Published:2025-09-29
Contact:
Email: mayy334@hebtu.edu.cn (Yuan-Yuan Ma)duj622@hebtu.edu.cn (Jing Du)hanzg116@hebtu.edu.cn (Zhan-Gang Han)
Supported by:Qi Wang, Yuqing Liu, Jiefei Wang, Yuan-Yuan Ma, Jing Du, Zhan-Gang Han. Catalysts for electrocatalytic dechlorination of chlorinated aromatic hydrocarbons: synthetic strategies, applications, and challenges[J]. Acta Phys. -Chim. Sin. 2025, 41(10), 100120. doi: 10.1016/j.actphy.2025.100120
Fig 3
(a) TEM image depicting C-Pd NPs; (b) TEM test for C-Pd NPs after AA treatment; (c) the activity of C-Pd towards EHDC was evaluated at varying cathode potentials (−0.65 to −1.10 V) in a nitrogen-saturated 50 mmol·L−1 Na2SO4 solution containing 2, 4-DCP (50 mg·L−1); (d) schematic representation of the potential-dependent mechanism for 2, 4-DCP EHDC [28]. Copyright 2017 American Chemical Society."
Fig 6
(a) Diagrammatic depiction of the Pd/PCN-08 preparation procedure; (b–e) TEM images of Pd/PCN-08, Pd/PCN-04, Pd/PCN-12 and Pd/PCN-16; (f–i) Histograms representing the corresponding particle diameter distributions of Pd/PCN-08, Pd/PCN-04, Pd/PCN-12, and Pd/PCN-16; (j) Corresponding phenol production catalyzed by various Pd/PCN electrodes; (k) TOFs and CEs of different Pd/PCN catalysts [30]. Copyright 2021 Elsevier."
Fig 7
(a) Schematic representation of the EHDC process utilizing P-Pd@MX/CC catalyst; (b–c) TEM and HR-TEM images of P-Pd@MX/CC electrode; (d) DCF degradation (the inset is the TON per Pd atom basis) of Pd@MX/CC and P-Pd@MX/CC electrodes; (e) Fitting curves of pseudo-first-order kinetics for Pd@MX/CC and P-Pd@MX/CC cathodes [52]. Copyright 2024 American Chemical Society."
Fig 8
(a) SEM analysis of Pd/Ni foam; (b) EDX analysis of Pd/Ni foam; (c) The pseudo-first-order fitting curves of Pd/Ni foam under different current [5]; Copyright 2007 Elsevier. (d) SEM micrographs of Pd/Ni (5000×) and (e) Pd/Ni (1000×); (f) The EHDC removal rate of monochlorophenols with Pd/foam-Ni [60]. Copyright 2007 MDPI."
Fig 9
(a, b) SEM images of Pd/Ni and Pd-NiMOF/Ni (the insets are the TEM micrographs of Pd/Ni and Pd-NiMOF/Ni; (c–e) CVs acquired for the Pd-NiMOF/Ni, Pd/Ni, and NiMOF/Ni cathodes under various initial applied voltages; (f) The concentration changes over time of 2, 4-D, o-PA, p-PA, and PA at Pd-NiMOF/Ni under a potential of −2.0 V [64]. Copyright 2020 Elsevier."
Fig 11
(a) Illustration of preparation of Pd@CoFeV-LDH/NF materials; (b) TEM images of Pd@CoFeV-LDH/NF electrodes; (c) Diagrammatic depiction of electrons transfer between CoFeV-LDH/NF and Pd active sites; (d) Time-course EHDC performances of Pd@CoFeV-LDH/NF and control samples [44]; Copyright 2024 Elsevier. (e) Schematic description of EHDC process for Pd/Ni67Al33-LDH-OHV. (f) Pd 3d XPS spectra for Pd/NixAl100−x-LDH-OHV (x = 52, 67, 74, 79 and 100); (g) Gibbs free energy analysis for H2O activation at OHV and OHV regeneration on Ni(OH)2, Ni(OH)2-OHV, Ni15Al1-LDH-OHV, and Ni14Al2-LDH-OHV; (h) EHDC of 2, 4-DCP with Pd/Ni67Al33-LDH-OHV and control samples [50]. Copyright 2022 American Chemical Society"
Fig 12
(a) Schematic representation of the fabrication procedure (NixFe1−x)P-Pd cathode; (b) Computation of the free energy associated with H* formation, Ni2P and NiFeP. (c) Energy profiles and reaction structures for 4-CP removal at Pd sites on NiFeP-Pd and Ni2P-Pd; (d) EHDC performance on NiFeP-Pd catalysts with various Fe loading [45]; Copyright 2024 Elsevier. (e) SEM image of Pd/Ni-Cu-P/NF; (f) High-resolution XPS spectra of Pd 3d in Pd/Ni-Cu-P/NF; (g) CVs of Pd/Ni-Cu-P/NF and Pd/NF in 50 mmol·L−1 Na2SO4 solution saturated with N2; (h) Temporal profiles of 2, 4-DPC and its products, along with carbon mass balance, on Pd/Ni-Cu-P/NF [69]. Copyright 2024 Elsevier."
Fig 13
(a) The process of EHDC on Pd/Fe-NiO/NF; (b) The intermediates substance and final products in the removal of 2, 4-D; (c) Durability tests for Pd/Fe-NiO/NF [54]; Copyright 2023 Elsevier. (d) LSV of Pd-Co3O4/Ni and control samples; (e) Nyquist analysis of Pd-Co3O4/Ni and control samples; (f) Temporal profiles of 2, 4-D concentrations using Pd-Co3O4/Ni and control samples; (g) Current efficiencies versus dechlorination time for Pd-Co3O4/Ni and control samples [71]. Copyright 2019 Elsevier."
Fig 14
(a1) The three-dimensional side view of isosurfaces showing the charge density difference (Δρ) in TiN-Pd4; (a2) Pd 3d XPS spectra of C-Pd and TiN-Pd; (a3 and a4) d-PDOS) for surface Pd atoms in C-Pd and TiN-Pd; (b1–b3) DFT analyses on the adsorption configurations and energies of 2, 4-DCP, P and HCl on C-Pd; (b4–b6) DFT analyses on the adsorption configurations and energies of 2, 4-DCP, P and HCl on TiN-Pd. (c) Plotting C/C0 versus reaction time for EHDC on TiN-Pd and control samples; (d) TOFs for C-Pd and TiN-Pd at a continuous potential; (e) CE values of TiN-Pd and control samples during EHDC process [16]. Copyright 2022 Royal Society of Chemistry."
Fig 15
(a) Illustration of the synthesis process for Pd NPs loaded on 2D Co-MNSs; (b) Computed charge density difference in the Pd/Co-MNSs electrode; (c) Planar average potential on the surfaces of Pd and Co-MNSs; (d) Illustration of how the Pd/Co-MNSs heterostructure influences the electron density of Pd; (e) kobs of CAP removal by Pd/Co-MNSs and reported electrodes [76]. Copyright 2022 Elsevier."
Fig 16
(a) The illustration schematic of EHDC catalyzed by C-Ag32Pd68; (b) Mechanism of EHDC for 2, 4-DCP on AgPd electrodes; (c) Illustration of Ag's role in EHDC on AgPd NPs; (d) Optimized adsorption structures (side view) and binding strength of 2, 4-DCP and (e) P; (f) Mass activity of C-AgPd electrodes [24]. Copyright 2019 American Chemical Society."
Fig 17
(a) Pd K-edge XANES of Pd foil and Pd7Au3 ANs; (b) Au L3-edge XANES of Au foil and Pd7Au3 ANs; (c) Adsorption model and adsorption strength of 4-CP and phenol on different Pd-Au ANs electrodes; (d) EHDC performance of pure Pd NPs and Pd-Au ANs electrodes. (e) Mass activity of PdxAuy ANs electrodes [43]. Copyright 2022 Elsevier."
Fig 18
(a) An illustrative schematic depicting the process of surface functionalization; (b) Schematic illustration of favorable contribution of amine decoration during EHDC process; (c) Mass and specific activities of Pd/amine and control samples [80]; Copyright 2021 American Chemical Society. (d) The increased EHDC activity of Pd/C-PEG through the introduction of PEG to increase the hydrophilicity of the Pd/C electrode; (e) Diagram illustrating the distinct environments of Pd/C and Pd/C-PEG [81]. Copyright 2023 American Chemical Society."
Table 1
Summary of representative EHDC catalyst in recent years."
| Catalyst | CAHs | EHDC efficiency | kap (min−1) | Mass Activity | CE (%) | TOF (h−1) | Reference |
| C-Pd | 2, 4-DCP | 91.44% | 0.118 | – | – | – | [ |
| C-Pd | 2, 4-DCP | 66.4% | – | – | 35 | – | [ |
| Pd/MWCNTs-B | 4-CP | 100% | 0.0971 | – | 54 | – | [ |
| Pd/MWCNTs-E | 4-CP | 60% | – | – | – | – | [ |
| Pd/MWCNTs-H | 4-CP | 29% | – | – | – | – | [ |
| Pd/PCN-08 | 4-CP | 85% | 0.039 | – | 17.7 | 22.8 | [ |
| P-Pd@MX–CC | DCF | 94.6 ± 0.1% | 0.39 | – | – | – | [ |
| Pd/Ni foam electrode | 4-MCB | 94.6% | 0.11 | – | 24.6 | – | [ |
| Pd/foam-Ni | 4-CP | 100% | 0.04733 | – | 24 | – | [ |
| Pd-NiMOF–Ni | 2, 4-D | 99.8% | – | – | – | – | [ |
| Pd-NiRu-MOF–NF | 2-CP | 100% | 0.0731 | – | 14.2 | – | [ |
| Pd@CoFeV-LDH–NF | 2, 4-DCP | 95.46% | 0.023 | – | – | – | [ |
| Pd/NixAl100−x-LDH-OHV) | 2, 4-DCP | – | – | 6.54 min−1·g−1 | 10.6 | – | [ |
| NiFeP-Pd stems | 4-CP | 98.8% | 0.044 | 446.01 min−1·g−1 | 16 | – | [ |
| Pd/Ni-Cu-P/NF | 2, 4-DCP | 100% | 0.0362 | – | 60 | – | [ |
| Pd/Fe-NiO/NF | 2, 4-D | 100% | – | 0.76 min−1·g−1 | 4.09 | – | [ |
| Pd-Co3O4/Ni foam electrode | 2, 4-D | 94.2% | – | – | 12.1 | – | [ |
| TiN-Pd | 2, 4-DCP | 96.4% | 0.0146 | – | 52 | 1116 | [ |
| Pd/Co-MNSs/Ni foam | CAP | ~97% | 0.11 | – | – | – | [ |
| C-Ag32Pd68 | 2, 4-DCP | 100% | – | 2.58 min−1·g−1 | ~32% | – | [ |
| Pd7Au3 ANs | 4-CP | 98.35% | 0.017 | – | 14% | – | [ |
| Pd/amine | 2, 4-DCP | 89.3% | – | 2.32 min−1·g−1 | – | – | [ |
| Pd/C-PEG25 | 2, 4-DCP | 100% | 0.004 | 2.13 min−1·g−1 | 11.7% | – | [ |
| Pd Cube-S | 2-CP | 80% | 0.00458 | – | 20.4% | 4.32 | [ |
| N/G-430-Pd | 2, 4-DCP | 76.45% | – | 0.28 min−1·g−1 | <28% | – | [ |
| Pd/NCMK-3-200 | 2, 4-DCP | ~80% | – | 3.37 min−1·g−1 | – | 19.8 | [ |
| Pd NPs/NO-C | CAP | 99% | 0.1036 | – | – | 6.72 | [ |
| Pd/PANI-rGO/NF | DCF | 99.3% | 0.028 | – | – | – | [ |
| Pd/NiCo-MOF/Nickel foam | CAP | 100% | 0.07 | – | 11.82% | – | [ |
| Pd/MXene@Ni-MOF/NF | 2-CP | 100% | 0.065 | – | – | – | [ |
| Pd/NiCo-LDH/NF | 2, 4-DCP | 94.81% | 0.0164 | 32.80 min−1·g−1 | – | – | [ |
| Pd/Ni2P-Ni foam | 4-CP | 100% | – | – | 22.62% | – | [ |
| NiFeP-Ti3C2Tx | 4-CP | 100% | 0.04 | 446.01 min−1·g−1 | – | – | [ |
| Pd/NiCo2O4/Ni-foam | 2, 4-D | 100% | – | – | 5.2% | – | [ |
| Pd@Co3O4-OV/NF | 2, 4-DCP | 95.4% | 0.034 | – | – | – | [ |
| TiC-Pd/Ni foam | 2, 4-DCBA | 100% | 0.039 | – | – | – | [ |
| Pd/TiC/Ti | 2, 4-DCBA | 78% | 0.003 | – | – | – | [ |
| Pd/STO | 2, 4-DCP | 80% | – | 6.38 min−1·g−1 | 33% | – | [ |
| Pd-Mn/Ni foam | 2, 4-DCP | 100% | 0.0357 | 9.58 min−1·g−1 | 29.11% | – | [ |
| Pd/MnO2/Ni foam | 2, 4-DCBA | 100% | 0.049 | 2.83 min−1·g−1 | – | – | [ |
| Pd/MnO2-Ni foam | 2, 4-DCP | 100% | – | 8.29 min−1·g−1 | 23% | – | [ |
| Pd-TiO2 | 2, 4-DCP | 80% | – | – | – | 1.68 | [ |
| Pd-PCN | 2, 4-DCP | 87% | 0.68 | – | – | – | [ |
| Pd/P-PCN | 2, 4-DCP | 82.5% | 0.172 | – | – | – | [ |
| PdNi/NPCNs | 4-CP | 100% | 0.023 | – | 25.8% | 9 | [ |
| Pd-Ni/MWCNTs/GF | 4-CP | 100% | 0.162 | – | – | – | [ |
| Cu@Pd/Ti electrode | atrazine | 91.5% | 0.0214 | – | – | – | [ |
| Pd-Cu@MXene/CC | DCF | 93.3 ± 0.1% | 0.0057 | – | – | – | [ |
| Pd0.5Fe0.5/graphene | CPs | – | – | – | – | – | [ |
| Co-SG | 2, 4-DCBA | 91.1% | – | – | – | – | [ |
| Ni-WC/NF | 4-CP | 100% | 0.022 | – | 13.9% | – | [ |
| CoPO/GC/NF | 2, 4-D | 84.0% | 0.0087 | – | – | – | [ |
Fig 20
TEM images of Pd Cube-S (a), Pd Cube-M (b), and Pd Cube-L (c); The calculated values of Pd Cube-S, Pd Cube-M and Pd Cube-L, ECSA (d), TOF (e), mass activity and specific activity (f); (g–h) Long-term electrolysis of Pd Cube-L, demonstrating its morphological changes; (i) EHDC efficiency of Pd Cube-S after 20 continuous runs; (j) EHDC performance of Pd Cube-L over 30 runs [40]. Copyright 2024 Elsevier."
Fig 21
(a) Pd 3d XPS of N/G-430-Pd and control samples; (b) PDOS of the p orbitals of C and N atoms, and the d orbital of Pd; Optimized adsorption models of and the adsorption strength of (c) 2, 4-DCP and (d) P on different electrodes; (e) The EHDC performance of N/G-430-Pd and control samples; (f) Intrinsic EHDC performance of N/G-430-Pd and control samples [34]; Copyright 2020 Royal Society of Chemistry. (g) Pd 3d XPS in Pd/NCMK-3-200 and control samples; (h) Under optimized configurations, the adsorption energy of 2, 4-DCP on Pd and PdO facets for para-C-Cl and ortho-C-Cl positions [3]; Copyright 2023 Elsevier. (i) The preparation routes of Pd NPs/NO-C; (j–k) Adsorption models of CAP molecules on the surface of pure carbon and N, O doped carbon; (l) EHDC performance of CAP with Pd NPs/NO-C and control samples; (m) Corresponding rate constant of Pd NPs/NO-C and control samples [82]. Copyright 2024 Wiley."
Fig 22
(a) Schematic illustration of EHDC process of Pd/NiCo-MOF/Nickel foam catalyst; (b–d) SEM analysis of Pd/NiCo-MOF/Nickel foam materials; (e) Nyquist diagram of Pd/NiCo-MOF/Nickel foam electrodes and control samples; (f) The EHDC of CAP catalyzed by Pd/NiCo-MOF/Nickel foam catalyst and control samples; (g) The corresponding first-order representation [53]; Copyright 2023 Elsevier. (h) Diagram of the fabrication procedure for Pd/MXene@Ni-MOF/NF; (i) EHDC performance of Pd/MXene@Ni-MOF/NF electrode in different pH values; (j) The influence of concurrent ions; (k) Cycling test for Pd/MXene@Ni-MOF/NF cathode [84]. Copyright 2024 Elsevier."
Fig 23
(a) Illustration of preparation of Pd/NiCo-LDH/NF catalyst; (b) Pd 3d XPS of Pd/Ni1Co2-LDH/NF-180 electrode and used material; DFT calculation on the adsorption structure and strength of H*, 2, 4-DCP and phenol on Pd/NiCo-LDH (c1, c4, c7); H*, 2, 4-DCP and phenol on Pd; H*, 2, 4-DCP and phenol on NiCo-LDH; (d) CVs of Pd/NiCo-LDH/NF electrodes; (e) Mass activity and kobs of Pd/Ni1Co2-LDH/NF-180 and control samples [41]. Copyright 2023 Elsevier."
Fig 24
(a) The fabrication illustration of Pd/Ni2P-Ni foam electrocatalyst; (b–c) TEM and HRTEM images of Pd/Ni2P-Ni foam electrode; (d) DFT-calculated H2 adsorption strength on the Pd (111), Ni2P (001) and Pd/Ni2P (001) surfaces; (e) Synergistic mechanism illustration of improved CAHs removal activity on Pd/Ni2P-NF [48]; Copyright 2023 Elsevier. (f) The illustration of Pd/NiFeP-Ti3C2Tx/NF preparation; (g) Adsorption capability of Pd and Ni on BZF at Pd/NiFeP-Ti3C2Tx/NF cathode; (h) EHDC performance of Pd/NiFeP-Ti3C2Tx/NF in comparison with the reported catalyst [99]. Copyright 2024 Elsevier."
Fig 25
(a) Illustration of EHDC of 2, 4-D with Pd/NiCo2O4/NF catalyst; (b) LSV analysis of Pd/NiCo2O4/NF electrode and control samples; (c) Pd 3d XPS of Pd/NiCo2O4/NF catalyst; (d) EHDC activity of Pd/NiCo2O4/NF cathode at various applied potentials [85]; Copyright 2021 American Chemical Society. (e) Synthesis illustration of Pd@Co3O4-OV/NF material; (f) XPS result of Pd 3d of Pd@Co3O4-OV/NF and Pd@Co3O4/NF; (g) DA of Pd@Co3O4-OV/NF and reported electrodes [86]. Copyright 2018 Elsevier. (h) Path and mechanism diagram of PCCP removal by Pd/Ti4O7/Ti electrode; (i) Removal efficiency of PCCP at Pd/Ti4O7/Ti and Pd/Ti electrodes and the dechlorination performance of the electrodes for different time periods; (j) Removal of PCCP by Pd/Ti4O7/Ti electrodes after seven cycle experiments [100]. Copyright 2025 Elsevier."
Fig 26
(a) Illustration of the EHDC reaction of 2, 4-DCBA catalyzed by a TiC-Pd/Ni foam cathode; (b) Plots of -ln(C/C0) against time for removal of 2, 4-DCBA under different electrodes [87]; Copyright 2019 Elsevier. (c) Schematic of EHDC mechanism for 2, 4-DCBA catalyzed by Pd/TiC/Ti; DFT calculation on adsorption strength of (d1) 2, 4-DCBA on Pd/TiC, (d2) H* on Pd/TiC, (d3) 2, 4-DCBA on Pd/C, and (d4) H* on Pd/C; (e) kobs for EHDC of 2, 4-DCBA using Pd/TiC/Ti and control samples [29]; Copyright 2020 Royal Society of Chemistry. (f) Schematically illustration for EHDC of 2, 4-DCP on Pd/C and Pd/STO catalysts [88]. Copyright 2024 American Chemical Society."
Fig 27
(a) Illustration of Pd-Mn/NF electrocatalyst synthesis process; The electrostatic potential distributions of the Pd-NF (b) and the Pd-Mn/NF (c) surfaces; (d) The PDOS of Pd in Pd-NF, and Pd-Mn/NF [89]; Copyright 2024 Elsevier. (e) Schematic illustration of dechlorination of 2, 4-DCBA on Pd/MnO2/Ni foam cathode [25]; Copyright 2018 Elsevier. (f) Diagram of the EHDC mechanism on Pd-containing catalysts; (g) The pivotal role of MnO2 during H* overflow process [15]. Copyright 2022 Elsevier."
Fig 28
(a) The illustration of EHDC of 2, 4-DCP with Pd-TiO2 Schottky heterojunction catalyst; (b) Comparison of Pd 3d XPS spectra for Pd-TiO2 and Pd-C; Side view of the optimized adsorption structures calculated for 2, 4 DCP on (c1) Pd-TiO2, (c2) Pd-C, and P on (c3) Pd-TiO2 and (c4) Pd-C [32]; Copyright 2019 Elsevier. (d) Planar-averaged electron density distinction Δρ(z) for Pd/PCN; (e) TEM image of Pd/PCN; (f) EHDC performances of Pd-PCN and control samples at −0.85 V; (g) The −ln(C/C0) − t plots of Pd-PCN and reference samples [1]; Copyright 2019 Elsevier. (h) The band structure of the P-PCN-X; (i) Adsorption energies of H*, 2, 4-DCP, and phenol on the Pd (111) surface doped with varying electron counts; (j) Schematical of the correlation between EHDC activity and electron content on Pd; (k) The EHDC performance for Pd-PCN and control samples [62]. Copyright 2021 Elsevier."
Fig 29
(a) A diagram illustrating the preparation of PdNi/NPCNs; (b) Profiles of 4-CP removal on PdNi/NPCNs electrode and control samples [2]; Copyright 2022 Elsevier. (c) The illustration of EHDC of 4-CP with Pd-Ni/MWCNTs/GF catalyst; (d) Reduction diagrams of 4-CP on Pd-Ni/MWCNTs/GF catalyst [90]. Copyright 2018 Elsevier."
Fig 30
(a) Diagram of Cu@Pd/Ti cathode fabrication; (b) Dechlorination of atrazine on Cu@Pd/Ti and control electrodes [91]; Copyright 2015 Elsevier. (c) Pd 3d XPS of Pd@MX/CC and Pd-Cu@MX/CC catalysts; (d) The densities of states of the Pd-Cu@MXene electrode [92]; Copyright 2024 Elsevier. (e) DFT calculation of free energy of DCF, 2-APA, and H* on Pd-Cu@MXene electrode. (f) Illustration of photoreduction preparation for graphene cathodes modified by metal (Pd, Fe, and Pd-Fe) NPs; (g–h) XPS spectra of Pd 3d and Fe 2p for Pd1.0/graphene and Pd0.5Fe0.5/graphene electrodes, respectively [93]. Copyright 2016 Elsevier."
Fig 31
(a) Synthesis procedure of Co-SG electrode; (b) TOC changes and elimination rate during EHDC reaction [94]; Copyright 2020 American Chemical Society. (c) Preparation schematic of the Ni-WC/NF electrode; (d) Dechlorination activity of Ni-WC/NF and control electrodes; (e) EHDC performance and CE values of Ni-WC/NF and other electrodes [33]; Copyright 2021 Elsevier. (f) Schematic illustration of CoPO/GC/NF preparation; (g) Plot of product distribution, PA yield, and removal efficiency of 2, 4-D of CoPO/NF(450) and control samples; (h) The illustration of EHDC of 2, 4-D with CoPO/NF catalyst [95]. Copyright 2020 Springer."
Fig 32
(a) Schematic diagram of the synthesis route for Cu1/SiO2; (b) CV curves of the SiO2 and Cu1/SiO2 catalysts in a 0.067 M PBS without adding CAP; (c) Kinetics plots of hydrogen desorption peak position versus scan rates of the SiO2, Cu1/SiO2, andCu1/CN catalysts; (d) Schematic depiction of surface hydroxyls-mediated hydrogen spillover on the Cu1/SiO2; (e) Conversion efficiency of CAP on various catalysts after 3 h electrolysis (f) Corresponding CAP dechlorination ratio of (e); (g) Faradaic efficiency during the CAP reduction process [102]. Copyright 2025 Wiley."
Table 2
Comparison of the performance of EHDC for representative CAHs."
| Catalyst | CAHs | EHDC efficiency | Reference |
| NiFeP-Ti3C2Tx | 4-CP | 100% | [ |
| Ni-WC/NF | 4-CP | 100% | [ |
| NiFeP-Pd stems | 4-CP | 98.8% | [ |
| Pd/MXene@Ni-MOF/NF | 2-CP | 100% | [ |
| Pd-NiRu-MOF/NF | 2-CP | 100% | [ |
| Pd@CoFeV-LDH/NF | 2, 4-DCP | 95.46% | [ |
| Pd/Ni-Cu-P/NF | 2, 4-DCP | 100% | [ |
| Pd/NiCo-LDH/NF | 2, 4-DCP | 94.81% | [ |
| TiN-Pd | 2, 4-DCP | 96.4% | [ |
| Pd/NCMK-3-200 | 2, 4-DCP | ~80% | [ |
| Pd@Co3O4-OV/NF | 2, 4-DCP | 95.4% | [ |
| Pd/MnO2/Ni foam | 2, 4, 6-TCP | 92.58% | [ |
| Ru/PPy/foam Ni | Pentachlorophenol (PCP) | 88% | [ |
| Pd-Co3O4/Ni foam electrode | 2, 4-D | 94.2% | [ |
| Pd-NiMOF/Ni | 2, 4-D | 99.8% | [ |
| Pd/NiCo2O4/Ni-foam | 2, 4-D | 100% | [ |
| Pd/PANI-rGO/NF | DCF | 99.3% | [ |
| Pd-Cu@MXene/CC | DCF | 93.3 ± 0.1% | [ |
| Pd NPs/NO-C | CAP | 99% | [ |
| Pd/NiCo-MOF/Nickel foam | CAP | 100% | [ |
| TiC-Pd/Ni foam | 2, 4-DCBA | 100% | [ |
| Pd/MnO2/Ni foam | 2, 4-DCBA | 100% | [ |
| 0Pd/TiC/Ti | 2, 4-DCBA | 78% | [ |
| Co-SG | 2, 4-DCBA | 91.1% | [ |
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