Natural Zeolites Functionalized with Heteropolyacids and Organic Chelating Agents for Selective Production of Higher α-Olefins
Abstract
1. Introduction
1.1. Overcoming the “Microporous Barrier” and Diffusion Limitations
1.2. Acidity Control to Suppress Secondary Reactions
1.3. Natural Clinoptilolite as a Platform for Sustainable Catalysis
1.4. The “Top-Down” Strategy and Nanodesign of Active Sites
2. Results and Discussion
2.1. Sequential Modification Strategy
2.1.1. Mineral Acid Activation and Decationization (HCl Treatment)
2.1.2. Design of Hierarchical Porosity via Chelation (EDTA/SSA Treatment)
- -
- The selective removal of iron that blocks access to active sites, thereby improving the operational stability of the catalyst.
- -
- The creation of a hierarchical pore system by locally removing aluminum from the tetrahedral sites of the framework without causing extensive surface amorphization.
2.1.3. Functionalization of Zeolite with Nano-Sized Heteropolyacids (HPAs)
2.1.4. Analysis of Synthesized Catalysts via Thermogravimetric Analysis and Differential Scanning Calorimetry
2.2. Textural Characteristics of Modified Clinoptilolite Samples
2.3. Surface Acidity: TPD-NH3 and FT-IR (CO Adsorption) Studies
2.4. Surface Morphology and Nano-Imaging (SEM and HR-TEM)
2.5. Surface Elemental Composition and Oxidation States (XPS Analysis)


3. Catalytic Cracking of Heavy Paraffins into Higher α-Olefins
3.1. Cracking of Technical Paraffin on HCpt Catalyst
3.2. Optimization of Chelation Conditions and Comparative Activity
3.3. Synergistic Effect of HPA Functionalization on Cracking Performance
4. Materials and Methods
4.1. Synthesis of Hierarchical Catalytic Systems
4.1.1. Pre-Treatment and Deionization
4.1.2. Formation of Hierarchical Porosity via Chelation
4.1.3. Functionalization with Nanoscale Heteropolyacids (HPAs)
4.2. Physicochemical Characterization
4.3. Catalytic Tests and Product Analysis
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| Cpt | Clinoptilolite |
| HPA | Heteropolyacid |
| LAS | Lewis acid site |
| BAS | Brønsted acid site |
| SSA | Sulfosalicylic acid |
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| Compound Name | Formula | S-Q, % | |
|---|---|---|---|
| Cpt | HCpt-1 | ||
| Clinoptilolite | Na8(Al6Si30O72)(H2O)9.04 | 40 | 49.7 |
| Analcime | Na16.24Al16.00Si32.00O96(H2O)16 | 12.3 | 12.9 |
| Quartz, syn | SiO2 | 10.5 | 8.5 |
| Calcium Aluminum Silicate Hydrate | Ca4(Al8Si16O48)(H2O)7.34 | 10.4 | 8.4 |
| Hematite | Fe2O3 | 7.7 | 6.2 |
| Albite, low | Na(AlSi3O8) | 7.8 | 5.8 |
| Calcite | Ca(CO3) | 5.8 | 3.7 |
| Siderite | Fe(CO3) | 4 | 3.3 |
| Sodium Aluminum Silicate | Na88(Al88Si104O384) | 1.5 | 1.5 |
| Parameter | Natural Cpt | Activated HCpt-1 |
|---|---|---|
| Fe2O3 content, wt.% | 10.2 | 2.7 |
| SiO2/Al2O3 molar ratio | 6.7 | 37.0 |
| Cation exchange capacity, mg-eq/g | 0.70 | —(Transition to H-form) |
| Phase composition | Clinoptilolite + impurities | Clinoptilolite (purified) |
| Fe2O3 content, wt.% | 10.2 | 2.7 |
| Catalyst Sample | Modifier | SiO2/Al2O3 (molar) | Fe2O3 Content, wt.% | Note |
|---|---|---|---|---|
| HCpt-1 | 1.75 N HCl | 37.0 | 2.7 | Basic H-form |
| 10% EDTA/HCpt-1 | EDTA | 38.5 | 1.1 | Fe removal, structure preservation |
| 10% SSA/HCpt-1 | SSA | 38.2 | 1.2 | Mesopore formation |
| Sample | HPA Type | Content, wt.% | Main Reflection (Intensity) | IR Band Shift, cm−1 |
|---|---|---|---|---|
| PW12/HCpt-SSA | H3PW12O40 | 10 | Reduced | 1108 |
| PMo12/HCpt-SSA | H3PMo12O40 | 10 | Reduced | 1097 |
| Sample | SBET, m2/g | Vpore, cm3/g | Average Pore Diameter, Å |
|---|---|---|---|
| Natural Cpt | 22.1 | 0.04 | 72.2 |
| HCpt-1 (HCpt) | 128.0 | 0.12 | 27.7 |
| 10% SSA/HCpt-1 | 160.0 | 0.22 | 21.2 |
| 10% PW12/HCpt-1 | 257.0 | 0.19 | 24.5 |
| Catalysts | Maximum Peak Temperature, °C | ∑ Amount of Desorbed NH3, 10−4 mol/g Cat | |||||
|---|---|---|---|---|---|---|---|
| T1 | T2 | T3 | T4 | T5 | T6 | ||
| HCpt-1 | 125 | - | - | - | - | 545 | 8.21 |
| HSal-1/HCpt-1 | 150 | - | 290 | 410 | - | 560 | 7.41 |
| PW12-HPA/HCpt-1 | 150 | 610 | 740 | 5.84 | |||
| H-Cpt/HCpt-1 | 115 | - | 290 | 375 | 455 | - | 8.53 |
| Catalyst | SiO2/Al2O3 | BAS I | BAS II | BAS III | |||
|---|---|---|---|---|---|---|---|
| ∆γOH, cm−1 | C, µ-mol/g | ∆γOH, cm−1 | C, µ-mol/g | ∆γOH, cm−1 | C, µ-mol/g | ||
| 10% PW12-HPA/HCpt | 340 | 4 | 320 | 6 | 220 | 30 | |
| HCpt | 23.6 | 340 | 4 | 280 | 20 | 225 | 45 |
| 10% HSal/HCpt | 12.6 | 340 | 1 | 310 | 15 | 235 | 35 |
| 10% H4EDTA/HCpt | 19.4 | - | - | - | - | - | - |
| Sample | Modification Type | Strong LASs (Tmax, °C) | BAC Presence (IR Data) | Cat. Activity (Cracking) |
|---|---|---|---|---|
| HCpt-1 | 1.75 N HCl | 380–420 | Weak | Medium |
| HCpt-SSA | 10% SSA | 440–460 | Moderate | High |
| PW12/HCpt | 10% HPA | 480–520 | Strong | Maximum |
| H-SA/HCpt | Super Acid | 550+ | Extra Strong | High * |
| T, °C | Reaction Product Composition, wt.% | Bromine Number | Conversion, % | Selectivity, % | |||
|---|---|---|---|---|---|---|---|
| Liquid | Gas | Carbon | UP * | ||||
| 500 | 5.7 | 8.1 | 1.5 | 84.7 | 65.0 | 15.3 | 41.0 |
| 530 | 15.5 | 17.5 | 1.4 | 65.6 | 113.0 | 34.4 | 46.9 |
| 540 | 16.8 | 24.3 | 1.4 | 57.5 | 56.8 | 42.5 | 40.9 |
| 560 | 22.6 | 43.7 | 1.7 | 32.0 | 52.8 | 68.0 | 33.4 |
| 570 | 30.9 | 65.8 | 3.3 | - | 60.0 | 96.8 | 31.9 |
| Indicator | HCpt-1 | HCpt-2 | HCpt-3 |
|---|---|---|---|
| Liquid product yield, wt.% | 68–72 | 65 | 62 |
| Total olefins in LP, % | 77.1 | 74.6 | 70.5 |
| C6–C10 fraction, % | 38.5 | 28.8 | 4.7 |
| C11–C15 fraction, % | 31.9 | 40.9 | 57.2 |
| Bromine number, g Br2/100 g | 113.0 | 84.6 | 63.7 |
| Catalytic System | T, °C | Liquid Olefin Yield, wt.% | Bromine Number | Conversion, % |
|---|---|---|---|---|
| Direct EDTA/Cpt | 540 | 17.5 | 68.5 | 44.7 |
| 10% SSA/HCpt-1 | 540 | 22.9 | 81.4 | 46.4 |
| 20% SSA/HCpt-1 | 540 | 14.5 | 62.3 | 34.1 |
| T, °C | Reaction Product Composition, wt.% | Bromine Number | Conversion, %. | Selectivity, % | |||
|---|---|---|---|---|---|---|---|
| Liquid | Gas | Carbon | UP * | ||||
| 500 | 6.7 | 4.6 | 1.6 | 87.1 | 87.6 | 12.9 | 59.3 |
| 530 | 12.0 | 19.3 | 1.4 | 67.3 | 85.8 | 32.7 | 38.2 |
| 540 | 31.9 | 25.0 | 1.5 | 41.6 | 78.6 | 58.4 | 56.0 |
| 560 | 21.2 | 55.0 | 1.1 | 22.7 | 84.0 | 77.3 | 27.7 |
| 570 | 41.6 | 55.4 | 3.0 | - | 101.3 | 96.9 | 42.8 |
| T, °C | Reaction Product Composition, wt.% | Conversion, %. | Selectivity, % | |||||
|---|---|---|---|---|---|---|---|---|
| Liquid Fraction | Gas | Coke | UP * | |||||
| High Olefins | Other HCs | Olefins | Other HCs | |||||
| 450 | 24.5 | 44.8 | 5.2 | 21.0 | 2.9 | 1.6 | 55.3 | 44.8 |
| 500 | 32.2 | 15.0 | 8.2 | 41.1 | 3.5 | - | 85.0 | 37.8 |
| 525 | 34.2 | 11.4 | 8.5 | 42.3 | 3.6 | - | 88.7 | 38.5 |
| 550 | 29.3 | 12.4 | 9.3 | 45.4 | 3.6 | - | 87.6 | 33.4 |
| 575 | 29.2 | 5.80 | 11.3 | 49.9 | 3.8 | - | 83.4 | 35.0 |
| Catalytic System | T, °C | Reaction Product Composition, wt.% | Bromine Number | Conversion, % | Selectivity, % | |||
|---|---|---|---|---|---|---|---|---|
| Liquid | Gas | Coke | UP * | |||||
| 1% PW12HPA/HCpt-1 | 525 | 32.0 | 39.9 | 3.3 | 24.8 | 53.3 | 75.2 | 42.5 |
| 550 | 31.5 | 40.6 | 3.4 | 24.5 | 80.0 | 75.5 | 41.7 | |
| 3% PW12-HPA/HCpt-1 | 525 | 30.4 | 34.4 | 3.2 | 32.0 | 57.5 | 68.0 | 44.7 |
| 550 | 32.3 | 40.0 | 3.6 | 24.0 | 55.6 | 76.0 | 42.5 | |
| 5% PW12-HPA/HCpt-1 | 525 | 36.6 | 31.1 | 3.2 | 29.3 | 53.3 | 70.7 | 51.7 |
| 550 | 35.2 | 36.5 | 3.6 | 24.4 | 56.7 | 75.6 | 46.5 | |
| 1% PW12-HPA/HCpt-1 | 525 | 34.2 | 50.8 | 3.6 | 12.3 | 64.9 | 88.7 | 38.5 |
| 550 | 29.3 | 54.7 | 3.6 | 16.6 | 70.6 | 87.6 | 33.4 | |
| Compositions of Liquid Cracking Products, wt.% | ||||||||
|---|---|---|---|---|---|---|---|---|
| Hydrocarbons | Catalyst: 10% PW12-HPA/HCpt | 5% PW12-HPA/HCpt | 1% PW12-HPA/HCpt | 10% PMo12-HPA/HCpt | ||||
| T, °C | 450 | 500 | 525 | 550 | 550 | 550 | 500 | |
| Alkanes | 11.6 | 31.7 | 24.8 | 29.6 | 20.5 | 15.1 | 17.2 | |
| Isoalkanes | 4.8 | 4.4 | 2.8 | 8.7 | 13.1 | 10.0 | 10.6 | |
| Aromatic compounds | 9.4 | 6.3 | 3.6 | 10.5 | 9.6 | 9.3 | 30.1 | |
| Naphthenic compounds | 4.7 | 1.4 | 1.2 | 7.1 | 9.7 | 6.1 | 5.4 | |
| ∑ Olefins | 69.6 | 56.3 | 67.8 | 44.1 | 46.9 | 59.4 | 36.8 | |
| Including | Linear α–olefins | 40.2 | 31.1 | 38.1 | 24.6 | 41.4 | 50.7 | 31.7 |
| Isoolefins + dienes | 29.4 | 25.2 | 29.7 | 19.5 | 5.5 | 8.7 | 5.1 | |
| Bromine number | 105.0 | 69.0 | 64.9 | 70.6 | 56.7 | 53.3 | 47.5 | |
| Higher Olefins | Higher Olefin Yields via GLC, % | ||
|---|---|---|---|
| Catalysts | |||
| 10% PW12-HPA/HCpt, 525 °C | 5% PW12-HPA/HCp, 550 °C | 1% PW12-HPA/HCpt, 550 °C | |
| Heptenes | 0.72/0.40 * | 4.49 | 11.45 |
| Octenes | 1.86/1.48 | 3.76 | 3.82/0.57 |
| Nonenes | 2.03/1.77 | 5.31 | 7.48/2.80 |
| Decenes | 3.19/2.75 | 4.24 | 3.21/0.82 |
| Undecenes | 2.02/0.97 | 4.59 | 2.83/0.00 |
| Dodecenes | 5.64/4.91 | 3.96 | 1.72/0.66 |
| Tridecenes | 7.37/6.18 | 2.64/1.70 | 1.62/0.47 |
| Tetradecenes | 5.41/4.52 | 3.49/3.57 | 2.14/0.59 |
| Pentadecenes | 3.37/1.60 | 0.45 | 0.35 |
| Hexadecenes | 0.53/0.17 | 0.58/0.03 | 0.55/0.07 |
| Heptadecenes | 1.47/1.10 | 0.75/0.09 | 0.32/0.25 |
| Octadecenes | 0.60/0.60 | 0.30/0.06 | 0.24 |
| Nonadecenes | 1.07/0.78 | 0.27 | 0.32 |
| Eicosenes | 0.69/0.34 | 0.32 | 0.71/0.21 |
| C21 olefins | 0.18/0.17 | 0.43/0.02 | 0.97/0.21 |
| C22 olefins | 0.38/0.38 | 0.85 | 1.09/0.26 |
| C23 olefins | 0.13/0.13 | 0.25 | 1.10/0.14 |
| C24 olefins | 0.07/0.07 | 0.22 | 0.88/0.07 |
| C25 olefins | 0.05/0.05 | 0.08 | 1.160 |
| C26 olefins | 0.14/0.14 | 0.26 | 1.35/0.23 |
| C27 olefins | 0.14/0.14 | 0.24 | 1.23/0.23 |
| C28 olefins | 0.14/0.14 | 0.40 | 1.30/0.48 |
| C29 olefins | 0.21/0.21 | 0.82 | 0.47/2.32 |
| C30 olefins | 0.15/0.15 | 1.15 | 1.46/0.24 |
| C31 olefins | 0.09/0.09 | 0.39 | 1.31/0.14 |
| C32 olefins | 0.10/0.10 | 0.46 | 0.95/0.77 |
| C33 olefins | 0.21/0.21 | 0.57 | 0.24/1.43 |
| C34 olefins | 0.00 | 0.06 | 0.35/0.07 |
| ∑C7–C9 | 4.62/3.25 | 13.57 | 22.76/4.19 |
| ∑C10–C15 | 27.02/20.95 | 19.40/5.27 | 11.53/2.56 |
| ∑C16–C20 | 4.38/3.01 | 2.24/0.39 | 2.16/0.76 |
| ∑21–C34 | 2.05/2.04 | 6.64/0.02 | 13.91/6.65 |
| T, °C | Reaction Product Composition, wt.% | Bromine Number | Conversion, % | Selectivity, % | |||
|---|---|---|---|---|---|---|---|
| Liquid | Gas | Carbon | UP * | ||||
| 450 | 10.0 | 27.2 | 2.7 | 60.1 | 68.5 | 40 | 25 |
| 500 | 25.6 | 38.6 | 3.0 | 32.8 | 75.0 | 67 | 38 |
| 525 | 27.4 | 47.1 | 3.3 | 22.2 | 68.6 | 78 | 35 |
| 550 | 29.7 | 50.3 | 3.4 | 16.6 | 78.4 | 83 | 36 |
| 575 | 23.5 | 69.4 | 3.5 | 3.60 | 30.4 | 96 | 24 |
| Catalytic System | Liquid Product Yield, % | Total α-Olefins, % | C7–C14 Selectivity, % |
|---|---|---|---|
| HCpt-1 (Base) | 62.0 | 77.1 | 38.5 |
| 10% PW12-HPA/HCpt-1 | 70.0 | 70.0 | >50.0 |
| 10% PMo12-HPA/HCpt-1 | 58.4 | 65.2 | 42.0 |
| Catalyst Sample | Modification Method | SiO2/ Al2O3 (mol.) | Fe2O3 (wt.%) | SBET (m2/g) | Vmeso (cm3/g) | IR-Shift νas (cm−1) | Active-Phase State (XPS) |
|---|---|---|---|---|---|---|---|
| Natural Cpt | Original mineral | 6.7 | 10.2 | 22.1 | 0.04 | 1060 | — |
| HCpt-1 | 1.75 N HCl | 37.0 | 2.7 | 128.0 | 0.12 | 1095 | — |
| HCpt-SSA | 10% SSA/HCpt-1 | 38.2 | 1.2 | 160.0 | 0.22 | 1085 | — |
| HCpt-EDTA | 10% EDTA/HCpt-1 | 38.5 | 1.1 | 168.0 | 0.24 | 1082 | — |
| 10% PW12/HCpt-1 | HPA/HCpt-1 | 39.0 | 1.0 | 257.0 | 0.19 | 1108 | W6+ |
| 10% PMo12-HPA/HCpt-1 | HPA/HCpt-1 | 38.8 | 1.1 | 242.0 | 0.18 | 1097 | Mo6+ |
| Catalytic System | Topt, °C | Liquid Product Yield, wt.% | Total Olefins in Distillate, % | Selectivity for C7–C14 Fraction, % | Bromine Number, g Br2/100 g | Gas Formation, wt.% |
|---|---|---|---|---|---|---|
| Thermal Cracking | 550 | 45–50 | 40–45 | 15.0 | 45.0 | 35.5 |
| Direct EDTA/Cpt | 540 | 17.5 | 55.2 | 18.5 | 68.5 | 76.8 |
| HCpt-1 | 500 | 68.2 | 77.1 | 38.5 | 113.0 | 12.4 |
| 10% SSA/HCpt-1 | 540 | 22.9 | 64.0 | 43.8 | 81.4 | 20.9 |
| 10%PW12-HPA/HCpt-1 | 525 | 70.0 | 70.0 | 52.4 | 105.0 | 15.2 |
| 10%PMo12-HPA/HCpt-1 | 525 | 58.4 | 65.2 | 42.0 | 92.5 | 18.7 |
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Kadirbekov, K.; Buzayev, N.; Kadirbekov, A.; Shadin, N.; Tussupkaliyev, Y.; Yespenbetov, A. Natural Zeolites Functionalized with Heteropolyacids and Organic Chelating Agents for Selective Production of Higher α-Olefins. Catalysts 2026, 16, 539. https://doi.org/10.3390/catal16060539
Kadirbekov K, Buzayev N, Kadirbekov A, Shadin N, Tussupkaliyev Y, Yespenbetov A. Natural Zeolites Functionalized with Heteropolyacids and Organic Chelating Agents for Selective Production of Higher α-Olefins. Catalysts. 2026; 16(6):539. https://doi.org/10.3390/catal16060539
Chicago/Turabian StyleKadirbekov, Kairat, Nurdaulet Buzayev, Almaz Kadirbekov, Nurgul Shadin, Yersin Tussupkaliyev, and Asylbek Yespenbetov. 2026. "Natural Zeolites Functionalized with Heteropolyacids and Organic Chelating Agents for Selective Production of Higher α-Olefins" Catalysts 16, no. 6: 539. https://doi.org/10.3390/catal16060539
APA StyleKadirbekov, K., Buzayev, N., Kadirbekov, A., Shadin, N., Tussupkaliyev, Y., & Yespenbetov, A. (2026). Natural Zeolites Functionalized with Heteropolyacids and Organic Chelating Agents for Selective Production of Higher α-Olefins. Catalysts, 16(6), 539. https://doi.org/10.3390/catal16060539

