Emerging Approaches for Dechlorination of Plastic Waste Prior to Thermochemical Recycling: A Comprehensive Review
Abstract
1. Introduction
2. Chemistry of Chlorine Release During Thermochemical Conversion
2.1. Thermal Degradation Behavior of PVC
PE/PS/PET → polymer-specific pyrolysis products
Interaction of product streams → changes in chlorine speciation and phase distribution
2.2. Evolution, Fate of Hydrogen Chloride and Its Implications During Thermochemical Processes
3. Need for Pretreatment Technologies
4. Mechanical and Physical Pretreatment Technologies
4.1. Sorting Technologies
4.2. Gravity-Based and Surface-Based Separation of Plastic Polymers
4.3. Mechanochemical Dechlorination
4.4. Solvent-Based Recovery and Swelling-Assisted Separation
4.5. Comparison Between Physical Separation Technologies
5. Chemical Pretreatment Technologies for Chlorine Removal
5.1. Alkaline Dechlorination and Calcium-Based Sorbents
5.2. Catalytic Dechlorination
5.2.1. Metal Oxides as Reactive Sorbents for Dechlorination
5.2.2. Red Mud as a Low-Cost Dechlorination Catalyst
5.2.3. Zeolite-Based Catalysts and Bifunctional Systems
5.3. Critical Assessment and Industrial Perspective
6. Emerging Photocatalytic Dechlorination Technologies
7. Hydrothermal and Liquefaction Dechlorination
8. Towards an Integrated Pretreatment Strategy for Chlorine Management
Quantitative Techno-Economic, Environmental and Safety Assessment
9. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Authors | Feedstock | Process | Advantage | Disadvantage |
|---|---|---|---|---|
| Saito et al. [66] | Waste PVC resin | Dry milling (Mechanochemical) | High dechlorination efficiency (up to 99%) under mild operating conditions | Additional washing or separation steps are required to remove the resulting chloride salts |
| Inoue et al. [63] | PVC + metal oxides | Ball milling (Mechanochemical) | Simultaneous C–Cl bond cleavage and chlorine immobilization as stable chloride salts (CaO, Fe2O3, etc.) | High additive-to-PVC ratios are often required to achieve complete chlorine fixation |
| Baláz et al. [62] | PVC + eggshell waste | Co-milling (Mechanochemical) | Simultaneous valorization of PVC and biogenic waste; more than 55% of chlorine converted into stable compounds | Demonstrated only at laboratory scale using homogeneous feedstocks; applicability to heterogeneous plastic waste remains uncertain |
| Jiang et al. [79] | Mixed PVC wastes | Selective dissolution (VinyLoop® process) | High-purity PVC recovery through closed-loop solvent recycling | High capital cost, complex solvent management, and no direct chlorine removal |
| Kumar et al. [80] | Electronic cables | Swelling + ball milling | Simultaneous recovery of high-purity copper, PVC, and plasticizers under ambient conditions | Applicable mainly to cable waste; efficient solvent recovery is essential for process sustainability |
| Xu et al. [81] | Thin cables | Swelling + centrifugation | Complete recovery of copper, PVC, and plasticizers with limited polymer degradation | Process applicability is largely restricted to cable waste with relatively uniform geometry |
| Kumar et al. [82] | Cables | Wet milling (Mechanochemical) | One-pot separation with reduced processing time compared with dry milling | Solvent recovery and process scale-up remain major challenges |
| Pita et al. [85] | Mixed Plastic Flakes | Froth flotation | Effective separation of polymers with similar densities; relatively low thermal energy demand | Performance strongly depends on particle size, surfactant dosage, and wastewater management; limited industrial implementation |
| Pongstabodee et al. [55] | Mixed post-consumer plastics | Three-stage sink–float + selective flotation | Combines density and surface-property differences to improve separation | Requires multiple separation steps and flotation reagents |
| Technology | Industrial Maturity |
|---|---|
| Sensor-based sorting (NIR) | Commercially established [56] |
| XRF sorting | Commercially available [56] |
| Sink–float separation | Commercially established [55] |
| Hydrocyclones | Commercially established [57] |
| Froth flotation | Pilot/limited industrial implementation [53] |
| Solvent dissolution (VinyLoop®) | Commercially demonstrated [79] |
| Swelling-assisted separation | Laboratory/pilot scale [82] |
| Mechanochemical dechlorination | Laboratory scale [69] |
| Authors | Feedstock | Process | Advantages | Disadvantages |
|---|---|---|---|---|
| Kumagai et al. [92] | Individual plastics (PVC, PE, PP, PS) and mixed plastics | Thermal decomposition in the presence of CaO or Ca(OH)2 | Efficient in situ HCl capture; inexpensive and readily available sorbents; easily integrated into thermochemical recycling | Performance strongly depends on feedstock composition and polymer type; high sorbent consumption and CaCl2-rich residues require further management |
| Meng et al. [100] | PVC resin + CaO, ZnO, CuO, MgO, Fe2O3, Al2O3 | Low-temperature catalytic pyrolysis with different metal oxides | Systematic comparison of metal oxides; identifies the influence of oxide basicity and reactivity on PVC dechlorination and chlorine fixation | Laboratory study using model PVC; catalyst regeneration and performance with heterogeneous plastic waste were not investigated |
| Yang et al. [105] | Mixed PVC/PE waste | Coupled catalytic dechlorination and catalytic pyrolysis for CNT production | Simultaneous chlorine removal and production of high-value carbon nanotubes; integrated waste valorization | Demonstrated only on model PVC/PE mixtures; catalyst stability, regeneration and process economics remain uncertain |
| Ding et al. [98] | PVC | Catalytic pyrolysis with natural iron oxide minerals | Simultaneous catalytic dechlorination, chlorine capture and carbon sequestration; low-cost and naturally abundant catalysts | Catalyst regeneration and long-term stability require further investigation; performance with heterogeneous plastic waste remains unknown |
| Jiang et al. [101] | Chlorine-containing organic solid waste | Chemical looping conversion using red mud as multifunctional oxygen carrier and chlorine sorbent | Simultaneous oxygen transfer and HCl capture; valorization of industrial waste; low catalyst cost | Catalytic performance depends on red mud composition; chloride accumulation and regeneration remain challenging |
| Hu et al. [97] | PVC-containing mixed plastic waste | Stepwise catalytic pyrolysis using Fe2O3/HZSM-5 | Simultaneous dechlorination and catalytic upgrading; reduced chlorine transfer to pyrolysis oil; enhanced aromatic production | Catalyst deactivation due to coke and chloride accumulation; validated under laboratory conditions |
| Sophonrat et al. [106] | PVC/cellulose mixture | Ex situ catalytic pyrolysis with CaO adsorption followed by catalytic reforming | Efficient HCl removal before catalytic upgrading; protects downstream catalysts from chlorine poisoning; improved vapor quality | Evaluated using simplified binary mixtures; finite CaO adsorption capacity; regeneration and applicability to real waste require further investigation |
| Inoue et al. [63] | PVC + metal oxides | Mechanochemical treatment with metal oxides | Simultaneous mechanochemical dechlorination and chlorine immobilization; comparison of different oxide additives | High oxide-to-PVC ratios required; evaluated using model PVC under laboratory conditions |
| Material/Study | Capacity or Performance | Deactivation Mechanism | Regeneration/Reuse | Cycles/Retention |
|---|---|---|---|---|
| Hydrated lime (Ravina et al.) [33] | 3.59 mg HCl g−1 after 30 min for the best sample | Not reported as cyclic deactivation | Not reported | Not reported |
| Iron oxide (Lingaiah et al.) [99] | Dechlorination activity in PVC-derived oil | HCl adsorption followed by iron-chloride formation | Reversible adsorbed HCl removed using He | No multi-cycle retention series |
| Ga liquid metal (Polo-Garzon et al.) [108] | Approximately 90% reduction of PVC chlorine at 200 °C | Initial decrease after first run | Catalyst reused | Four cycles; relatively stable thereafter |
| Technology | Typical Reagents/Catalysts | Primary Mechanism | Industrial Maturity |
|---|---|---|---|
| Alkaline dechlorination | NaOH, KOH, Ca(OH)2 | Chemical dehydrochlorination and HCl neutralization | Pilot scale/Industrially demonstrated [89] |
| Reactive sorbents | CaO, limestone, dolomite | In situ HCl capture (chloride formation) | Commercially demonstrated [33] |
| Metal oxide catalysts | Fe2O3, ZnO, MgO, CuO | Catalytic C–Cl bond cleavage and/or HCl adsorption | Laboratory–pilot scale [99,100] |
| Waste-derived catalysts | Red mud | Catalytic dechlorination coupled with HCl capture | Laboratory scale [101] |
| Modified zeolites | HZSM-5, metal-modified ZSM-5 | Catalytic cracking and hydrocarbon upgrading with limited dechlorination | Laboratory scale [104] |
| Bifunctional catalysts | Fe/HZSM-5, metal oxide–zeolite composites | Simultaneous dechlorination and catalytic upgrading | Laboratory scale [97] |
| Feedstock Characteristics | Recommended Pretreatment | Main Objective | Industrial Maturity |
|---|---|---|---|
| Clean polyolefin-rich waste | NIR sorting + sink–float [55,56] | Separate PVC-rich contamination | Commercial |
| Mixed municipal plastic waste | NIR + XRF + density separation [56] | Reduce chlorine content of the selected feed stream | Commercial |
| PVC-rich waste | Alkaline dechlorination [89] | Direct chlorine removal | Pilot |
| Wet plastic waste | Hydrothermal dechlorination [107] | Polymer dechlorination with chlorine transfer to the aqueous phase | Laboratory; specific pilot case [128] |
| WEEE plastics | Sensor sorting + mechanochemical treatment [69] | PVC concentration and stabilization | Laboratory–Pilot |
| Residual chlorine after pretreatment | Catalytic sorbents (CaO, Fe2O3, red mud) [33,101] | HCl capture during pyrolysis | Pilot–Commercial |
| High-quality fuel production | Fe/HZSM-5 or bifunctional catalysts [97,104] | Simultaneous dechlorination and upgrading | Laboratory–Pilot |
| Technology/Study | Representative Quantitative Result | Assessment Basis | Main Comparison Limitation |
|---|---|---|---|
| Mixed-plastic routes (Hernández et al.) [129] | Basic absorption mainly below ~0.1 wt.% PVC under model assumptions; hydrogenolysis most favorable economics; catalytic pyrolysis lowest GWP | TEA + LCA of modeled configurations | Specific feed, products, and process assumptions |
| Selective dissolution (Yaish et al.) [130] | Mixed environmental trade-offs relative to virgin PVC; no price parity under the assessed conditions | LCA + techno-economic assessment | System-specific solvent/distillation configuration |
| Mechanochemical Cl recovery (Lu et al.) [131] | Environmental performance sensitive to milling and design conditions | Ex ante LCA | No universal energy burden can be inferred |
| Hydrothermal (Salimi et al.) [127] | 89.42% dechlorination accompanied by measurable Fe release under the high-severity conditions studied | Experimental dechlorination + corrosion | Specific SS-316 reactor and operating conditions |
| Photothermal (Han et al.) [132] | Modeled energy and carbon-footprint reductions relative to the thermal reference process | Process model | Not conventional TiO2 photocatalysis |
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Corbellini, F.; Vaiano, V.; Guastaferro, M.; Bacci di Capaci, R.; Brunazzi, E.; Tognotti, L.; Nicolella, C. Emerging Approaches for Dechlorination of Plastic Waste Prior to Thermochemical Recycling: A Comprehensive Review. Catalysts 2026, 16, 818. https://doi.org/10.3390/catal16090818
Corbellini F, Vaiano V, Guastaferro M, Bacci di Capaci R, Brunazzi E, Tognotti L, Nicolella C. Emerging Approaches for Dechlorination of Plastic Waste Prior to Thermochemical Recycling: A Comprehensive Review. Catalysts. 2026; 16(9):818. https://doi.org/10.3390/catal16090818
Chicago/Turabian StyleCorbellini, Filippo, Vincenzo Vaiano, Mariangela Guastaferro, Riccardo Bacci di Capaci, Elisabetta Brunazzi, Leonardo Tognotti, and Cristiano Nicolella. 2026. "Emerging Approaches for Dechlorination of Plastic Waste Prior to Thermochemical Recycling: A Comprehensive Review" Catalysts 16, no. 9: 818. https://doi.org/10.3390/catal16090818
APA StyleCorbellini, F., Vaiano, V., Guastaferro, M., Bacci di Capaci, R., Brunazzi, E., Tognotti, L., & Nicolella, C. (2026). Emerging Approaches for Dechlorination of Plastic Waste Prior to Thermochemical Recycling: A Comprehensive Review. Catalysts, 16(9), 818. https://doi.org/10.3390/catal16090818

