Submitted:
26 May 2026
Posted:
27 May 2026
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Abstract

Keywords:
1. Introduction
2. Methodology
3. Current State of Air Quality
4. Process of Brick Manufacturing
5. Brick Kilns and Emissions
6. Nexus of Brick Kilns, Air Quality and Public Health
6.1. Particulate Matter
6.2. SO2
6.3. COX
6.4. Dioxins
6.5. Heavy Metals
6.6. Organic Pollutants
6.7. Indirect Impacts
7. Recommendations
7.1. Improved Kiln Technologies
7.2. Alternative Building Materials
7.3. Choosing the Right Path
8. Conclusions
Abbreviations
References
- Abbas, A.; Sajid, M. B.; Shahzad, N.; Din, E. U.; Mahmood, M.; Salahuddin, U. Barriers and drivers for adoption of energy efficient and environment friendly brick kiln technologies in Punjab, Pakistan. Energy Reports 8 2022, 15563–15573. [Google Scholar] [CrossRef]
- Abdel-Shafy, H. I.; Mansour, M. S. M. A review on polycyclic aromatic hydrocarbons: Source, environmental impact, effect on human health and remediation. Egyptian Journal of Petroleum 2016, 25(1), 107–123. [Google Scholar] [CrossRef]
- Abedin, M.; Karim, M.; Khandaker, M. U.; Kamal, M.; Hossain, S.; Miah, M.; Chemistry. Dispersion of radionuclides from coal-fired brick kilns and concomitant impact on human health and the environment. 2020, 177, 109165. [Google Scholar] [CrossRef]
- Achakzai, K.; Khalid, S.; Adrees, M.; Bibi, A.; Ali, S.; Nawaz, R.; Rizwan, M. Air pollution tolerance index of plants around brick kilns in Rawalpindi, Pakistan. Journal of Environmental Management 190 2017, 252–258. [Google Scholar] [CrossRef]
- Ahmad, H. R.; Farooqi, Z. U. R.; Sabir, M.; Sardar, M. F. Brick Kilns: Types, Emissions, Environmental Impacts, and their Remedial Measures. In Biodiversity, Conservation and Sustainability in Asia; Springer, 2022; Volume 2, pp. 945–958. [Google Scholar]
- Al Osman, M.; Yang, F.; Massey, I. Y. J. B. Exposure routes and health effects of heavy metals on children. 2019, 32, 563–573. [Google Scholar] [CrossRef]
- Ali, M.; Room, S.; Khan, M. I.; Masood, F.; Memon, R. A.; Khan, R.; Memon, A. M. Assessment of local earthen bricks in perspective of physical and mechanical properties using Geographical Information System in Peshawar, Pakistan . Paper presented at the Structures; 2020. [Google Scholar]
- Ali, M. U.; Siyi, L.; Yousaf, B.; Abbas, Q.; Hameed, R.; Zheng, C.; Wong, M. H. Emission sources and full spectrum of health impacts of black carbon associated polycyclic aromatic hydrocarbons (PAHs) in urban environment: A review. Critical Reviews in Environmental Science and Technology 2021, 51(9), 857–896. [Google Scholar] [CrossRef]
- Apu, I. K. Exploring the Ecological and Public Health Implications of Brick Manufacturing in a Suburban Municipality of Bangladesh: A Comprehensive Case Study. 2023. [Google Scholar] [CrossRef]
- Arias-Pérez, R. D.; Taborda, N. A.; Gómez, D. M.; Narvaez, J. F.; Porras, J.; Hernandez, J. C. Inflammatory effects of particulate matter air pollution. Environmental Science and Pollution Research 2020, 27(34), 42390–42404. [Google Scholar] [CrossRef] [PubMed]
- Bashir, Z.; Amjad, M.; Raza, S. F.; Ahmad, S.; Abdollahian, M.; Farooq, M. J. S. Investigating the Impact of Shifting the Brick Kiln Industry from Conventional to Zigzag Technology for a Sustainable Environment. 2023, 15(10), 8291. [Google Scholar] [CrossRef]
- Bo, X.; Guo, J.; Wan, R.; Jia, Y.; Yang, Z.; Lu, Y.; Wei, M. J. E. P. Characteristics, correlations and health risks of PCDD/Fs and heavy metals in surface soil near municipal solid waste incineration plants in Southwest China. 2022, 298, 118816. [Google Scholar] [CrossRef]
- Boningari, T.; Smirniotis, P. G. Impact of nitrogen oxides on the environment and human health: Mn-based materials for the NOx abatement. Current Opinion in Chemical Engineering 13 2016, 133–141. [Google Scholar] [CrossRef]
- Charai, M.; Sghiouri, H.; Mezrhab, A.; Karkri, M.; El Hammouti, K. J. M. T. P. Comparative study of a clay before and after fired brick-making process. 2020, 31, S103–S108. [Google Scholar] [CrossRef]
- David, M.; Afzal, M.; Shoaib, M.; Aman, F.; Cloete, K. J.; Turi, N.; Research, P. Study of occupational exposure to brick kiln emissions on heavy metal burden, biochemical profile, cortisol level and reproductive health risks among female workers at Rawat, Pakistan. 2020, 27, 44073–44088. [Google Scholar] [CrossRef]
- Du, B.; Tandoc, M. C.; Mack, M. L.; Siegel, J. A. J. I. a. Indoor CO2 concentrations and cognitive function: A critical review. 2020, 30(6), 1067–1082. [Google Scholar]
- Fadel, M.; Ledoux, F.; Afif, C.; Courcot, D. J. A. P. R. Human health risk assessment for PAHs, phthalates, elements, PCDD/Fs, and DL-PCBs in PM2. 5 and for NMVOCs in two East-Mediterranean urban sites under industrial influence. 2022, 13(1), 101261. [Google Scholar]
- Getahun, Z.; Abewaa, M.; Mengistu, A.; Adino, E.; Kontu, K.; Angassa, K.; Abdu, J. Towards sustainable charcoal production: Designing an economical brick kiln with enhanced emission control technology. Heliyon 2024, 10(6), e27797. [Google Scholar] [CrossRef] [PubMed]
- Gul, N.; Khan, B.; Khan, H.; Muhammad, S.; Ahmad, I.; Gul, N. Levels of polychlorinated dibenzo-p-dioxins and dibenzofurans (PCDD/Fs) in municipal waste dumping site, incinerator and brick kiln residues: evaluation for potential risk assessment. Arabian Journal of Geosciences 2021, 14(9), 741. [Google Scholar] [CrossRef]
- Hamid, A.; Riaz, A.; Noor, F.; Mazhar, I. Assessment and mapping of total suspended particulate and soil quality around brick kilns and occupational health issues among brick kilns workers in Pakistan. Environmental Science and Pollution Research 2023, 30(2), 3335–3350. [Google Scholar] [CrossRef]
- Heidari, L.; Ghazizade, M. J. J. P. S.; Protection, E. Recycling of spent industrial soil in manufacturing process of clay brick. 2021, 145, 133–140. [Google Scholar] [CrossRef]
- Helal, M.; Ghanem, S.; El-Sikaily, A. Impact of PCBs, Furan and Dioxin on Hepatocarcinogenesis. In Persistent Organic Pollutants (POPs)-Monitoring, Impact and Treatment; IntechOpen, 2022. [Google Scholar]
- Hossain, M.; Zahid, A.; Arifunnahar, M.; Siddique, M. J. J. o. S.; Technology; Informatics, E. Effect of brick kiln on arable land degradation, environmental pollution and consequences on livelihood of Bangladesh. 2019, 6(02), 474–488. [Google Scholar] [CrossRef]
- Hussain, A.; Khan, N. U.; Ullah, M.; Imran, M.; Ibrahim, M.; Hussain, J.; Khan, M. U. J. P. Brick kilns air pollution and its impact on the peshawar city. 2022, 8(4), 1266–1273. [Google Scholar]
- IHME; Health Effects Institute. State of Global Air 2020. Data source: Global Burden of Disease Study 2019; IHME, 2020. [Google Scholar]
- Imaduddin, S.; Khan, Y. A.; Mirza, K.; Bhadra, B. Detection of Brick Kilns Using Multi-Spectral Bands of Sentinel-2 Imagery . Paper presented at the 2023 International Conference on Artificial Intelligence and Smart Communication (AISC); 2023. [Google Scholar]
- Jacobson, T. A.; Kler, J. S.; Hernke, M. T.; Braun, R. K.; Meyer, K. C.; Funk, W. E. Direct human health risks of increased atmospheric carbon dioxide. Nature Sustainability 2019, 2(8), 691–701. [Google Scholar] [CrossRef]
- Kan, H. World Health Organization air quality guidelines 2021: implication for air pollution control and climate goal in China. Chin Med J (Engl) 2022, 135(5), 513–515. [Google Scholar] [CrossRef] [PubMed]
- Khan, M. W.; Ali, Y.; De Felice, F.; Salman, A.; Petrillo, A. J. S. o. t. T. E. Impact of brick kilns industry on environment and human health in Pakistan. 2019, 678, 383–389. [Google Scholar] [CrossRef] [PubMed]
- Levy, R. J. Carbon monoxide pollution and neurodevelopment: A public health concern. Neurotoxicology and Teratology 49 2015, 31–40. [Google Scholar] [CrossRef]
- Lewis, R. J.; Copley, G. B. Chronic low-level hydrogen sulfide exposure and potential effects on human health: A review of the epidemiological evidence. Critical Reviews in Toxicology 2015, 45(2), 93–123. [Google Scholar] [CrossRef]
- Liu, S.; Zhan, C.; Zhang, J.; Liu, H.; Xiao, Y.; Zhang, L.; Safety, E. Polycyclic aromatic hydrocarbons in railway stations dust of the mega traffic hub city, central China: Human health risk and relationship with black carbon. 2020, 205, 111155. [Google Scholar] [CrossRef]
- Maaze, M. R.; Shrivastava, S. Selection of eco-friendly alternative brick for sustainable development; A study on Technical, Economic, Environmental and Social feasibility. Construction and Building Materials 408 2023, 133808. [Google Scholar] [CrossRef]
- Manisalidis, I.; Stavropoulou, E.; Stavropoulos, A.; Bezirtzoglou, E. J. F. i. p. h. Environmental and health impacts of air pollution: a review. 8 2020, 14. [Google Scholar] [CrossRef] [PubMed]
- Marquès, M.; Domingo, J. L. J. I. J. o. E. R.; Health, P. Concentrations of PCDD/Fs in human blood: a review of data from the current decade. 2019, 16(19), 3566. [Google Scholar] [CrossRef]
- Michelini, E.; Ferretti, D.; Miccoli, L.; Parisi, F. Autoclaved aerated concrete masonry for energy efficient buildings: State of the art and future developments. Construction and Building Materials 402 2023, 132996. [Google Scholar] [CrossRef]
- Mitra, S.; Chakraborty, A. J.; Tareq, A. M.; Emran, T. B.; Nainu, F.; Khusro, A.; Simal-Gandara, J. Impact of heavy metals on the environment and human health: Novel therapeutic insights to counter the toxicity. Journal of King Saud University - Science 2022, 34(3), 101865. [Google Scholar] [CrossRef]
- Nag, I. J. C. A. J. Air pollution abatement by selective nanoparticle deposition on filtration systems. 2022, 32(1), 1–9. [Google Scholar] [CrossRef]
- Nazir, U.; Taj, M.; Uppal, M.; Khalid, S. J. a. p. a. Mitigating climate and health impact of small-scale kiln industry using multi-spectral classifier and deep learning. 2023. [Google Scholar]
- Nicolaou, L.; Sylvies, F.; Veloso, I.; Lord, K.; Chandyo, R. K.; Sharma, A. K.; Waugh, D. J. Brick kiln pollution and its impact on health: A systematic review and meta-analysis. 2023.2011. 2023, 23298642. [Google Scholar]
- Ouyang, H.; Tang, X.; Kumar, R.; Zhang, R.; Brasseur, G.; Churchill, B.; Zhu, T. J. B. o. t. A. M. S. Toward better and healthier air quality: Implementation of WHO 2021 global air quality guidelines in Asia. 2022, 103(7), E1696–E1703. [Google Scholar] [CrossRef]
- Parvez, M. A.; Rana, I. A.; Nawaz, A.; Arshad, H. S. H. J. E. S.; Research, P. The impact of brick kilns on environment and society: a bibliometric and thematic review. 2023, 30(17), 48628–48653. [Google Scholar] [CrossRef]
- Rabiei, K.; Sarrafzadegan, N.; Ghanbari, A.; Shamsipour, M.; Hassanvand, M. S.; Amini, H.; Farzadfar, F. The burden of cardiovascular and respiratory diseases attributed to ambient sulfur dioxide over 26 years. Journal of Environmental Health Science and Engineering 2020, 18(1), 267–278. [Google Scholar] [CrossRef]
- Rajarathnam, U.; Athalye, V.; Ragavan, S.; Maithel, S.; Lalchandani, D.; Kumar, S.; Bond, T. J. A. E. Assessment of air pollutant emissions from brick kilns. 2014, 98, 549–553. [Google Scholar] [CrossRef]
- Rauf, A.; Shakir, S.; Ncube, A.; Abd-ur-Rehman, H. M.; Janjua, A. K.; Khanum, S.; Khoja, A. H. Prospects towards sustainability: A comparative study to evaluate the environmental performance of brick making kilns in Pakistan. Environmental Impact Assessment Review 94 2022, 106746. [Google Scholar] [CrossRef]
- Raza, A.; Ali, Z. J. J. o. H. P. Impact of air pollution generated by brick kilns on the pulmonary health of workers. 2021, 11(31), 210906. [Google Scholar] [CrossRef]
- Raza, W.; Saeed, S.; Saulat, H.; Gul, H.; Sarfraz, M.; Sonne, C.; Kim, K.-H. A review on the deteriorating situation of smog and its preventive measures in Pakistan. Journal of Cleaner Production 279 2021, 123676. [Google Scholar] [CrossRef]
- Rehan, S. T.; Iftikhar, A.; Khan, S.; ul Hussain, H.; Ullah, I.; Naseer, U.; Asghar, M. S. J. I. J. o. S. Air pollution a hidden scourge to cardiovascular health: insight from top polluted cities of Pakistan. 2023, 109(3), 553–554. [Google Scholar] [CrossRef]
- Riza, F.; Abdul Rahman, I.; Zaidi, A. A brief review of Compressed Stabilized Earth Brick (CSEB) 2011.
- Roser, M. Data review: how many people die from air pollution?” Published online at OurWorldInData.org. 2021. Available online: https://ourworldindata.org/data-review-air-pollution-deaths'.
- Saha, M.; Ahmed, S.; Sheikh, A.; Mostafa, M. J. J. J. o. E.; Sciences, E. Impacts of Brick Kilns on Environment around Kiln areas of Bangladesh. 2021, 12(3). [Google Scholar]
- Saha, M. K.; Ahmed, S. J.; Sheikh, M. A. H.; Mostafa, M. G. J. J. o. A. P.; Health. Occupational and environmental health hazards in brick kilns. 2020. [Google Scholar] [CrossRef]
- Saju, J. A.; Rahman, M. M.; Debnath, P. K.; Nayan, S. B. IMPACTS OF AIR POLLUTION ON HUMAN HEALTH AND ENVIRONMENT DUE TO BRICK KILNS EMISSION: A REVIEW.
- Sanjel, S.; Thygerson, S. M.; Khanal, S. N.; Joshi, S. K. Environmental and occupational pollutants and their effects on health among brick kiln workers. 2016. [Google Scholar] [CrossRef]
- Shaikh, K.; Imran, U.; Khan, A.; Khokhar, W. A.; Bakhsh, H. J. S. A. S. Health risk assessment of emissions from brick kilns in Tando Hyder, Sindh, Pakistan using the AERMOD dispersion model. 2020, 2, 1–11. [Google Scholar] [CrossRef]
- Skinder, B. M.; Pandit, A. K.; Sheikh, A.; Ganai, B. J. J. P. E. C. Brick kilns: cause of atmospheric pollution. 2014, 2(112), 3. [Google Scholar] [CrossRef]
- Subhanullah, M.; Ullah, S.; Javed, M. F.; Ullah, R.; Akbar, T. A.; Ullah, W.; Sajjad, R. U. J. A. Assessment and impacts of air pollution from brick kilns on public health in northern pakistan. 2022, 13(8), 1231. [Google Scholar] [CrossRef]
- Suksuwan, W.; Yeranee, K.; Wae-hayee, M. J. I. J. o. E. S.; Technology. Environmental impacts and temperature variations in brick firing process in a Beehive Kiln. 2023, 20(8), 8925–8940. [Google Scholar] [CrossRef]
- Vasconcelos da Silva, A.; Delgado, J.; Guimarães, A.; Barbosa de Lima, W.; Soares Gomez, R.; Pereira de Farias, R.; Barbosa de Lima, A. J. E. Industrial ceramic blocks for buildings: clay characterization and drying experimental study. 2020, 13(11), 2834. [Google Scholar] [CrossRef]
- Wu, Y.; Li, R.; Cui, L.; Meng, Y.; Cheng, H.; Fu, H. The high-resolution estimation of sulfur dioxide (SO2) concentration, health effect and monetary costs in Beijing. Chemosphere 241 2020, 125031. [Google Scholar] [CrossRef]
- Xue, T.; Geng, G.; Meng, X.; Xiao, Q.; Zheng, Y.; Gong, J.; Kan, H. J. N. S. R. New WHO global air quality guidelines help prevent premature deaths in China. 2022, 9(4), nwac055. [Google Scholar] [CrossRef]
- Yang, Q.; Shen, H.; Liang, Z. J. S. C.; Society. Analysis of particulate matter and carbon monoxide emission rates from vehicles in a Shanghai tunnel. 2020, 56, 102104. [Google Scholar] [CrossRef]
- Yüksek, İ.; Öztaş, S. K.; Tahtalı, G. J. E. E. The evaluation of fired clay brick production in terms of energy efficiency: a case study in Turkey. 2020, 13, 1473–1483. [Google Scholar] [CrossRef]
- Zheng, X.-y.; Orellano, P.; Lin, H.-l.; Jiang, M.; Guan, W.-j. J. E. i. Short-term exposure to ozone, nitrogen dioxide, and sulphur dioxide and emergency department visits and hospital admissions due to asthma: A systematic review and meta-analysis. 2021, 150, 106435. [Google Scholar] [CrossRef]







| No. | Outline Step | Pollutants | Environmental Impacts |
|---|---|---|---|
| 1 | Raw Material Extraction | Dust (PM10 & PM2.5), Greenhouse gases (CO2) from Machinery | Air pollution, respiratory issues, Climate change |
| 2 | Preparation & Processing | Dust (crushing & grinding), Greenhouse gases (CO2) from Machinery | Air pollution, respiratory issues |
| 3 | Mixing, shaping, and drying | Dust (material handling) Water vapors and VOCs |
Air pollution, respiratory issues |
| 4 | Firing | Particulate matter (PM), Greenhouse gases (CO2) from kiln fuel, Nitrogen oxides (NOx), and Sulfur oxides (SOx) | Air pollution, respiratory issues, Smog formation, acid rain, respiratory issues, Acid rain, and respiratory issues |
| 5 | Sorting, excavation, and storage | Dust (material handling), Greenhouse gases (CO2) from transportation | Air pollution, respiratory issues |
| Impact Type | Pollutants | Health Impacts | Explanation (Image Reference) |
|---|---|---|---|
| Direct Impacts | PM, CO, SO2, PAHs etc. | Respiratory Diseases | Direct inhalation of pollutants irritates the lungs and airways, causing coughing, wheezing, and difficulty breathing. |
| Cancer | Long-term exposure to these pollutants damages cells and DNA, increasing the risk of lung cancer and other cancers. | ||
| Indirect Impacts | Exposure to Heatwaves | Heatstroke | Brick kilns generate significant heat, contributing to heatwaves. High temperatures overwhelm the body's ability to cool itself, leading to heatstroke, organ damage, and even death. |
| Climate Change, Droughts & Disasters | Malnutrition | Brick kiln emissions contribute to climate change, leading to extreme weather events like droughts and floods. These disrupt food production, causing food insecurity and malnutrition. | |
| Ozone Depletion, UV Exposure | Skin Cancer and Skin Issues | Brick kiln emissions can contribute to ozone depletion, allowing more harmful ultraviolet (UV) radiation from the sun to reach the Earth's surface. Increased UV exposure raises the risk of skin cancer, premature aging, and cataracts. | |
| Soil Pollution | Not specified in the image | Brick kilns can release pollutants that contaminate the soil. These pollutants can then enter the food chain through plants, leading to various health problems depending on the specific pollutant. | |
| Water Pollution | Bioaccumulation | Pollutants from brick kilns can contaminate water sources. When humans or animals consume contaminated water, the pollutants can accumulate in their bodies over time, leading to various health problems depending on the pollutant. |
| Sr. No | Pollutant | Diseases Caused by Pollutants | References |
|---|---|---|---|
| 1 | Particulate Matter (PM) | COPD (Chronic obstructive pulmonary disease), neurological diseases, hypertension, Alzheimer’s disease, anxiety, Parkinson’s disease, atherosclerosis, Asthma, loss of cognitive function, myocardial infarction, strokes cardiovascular diseases, and cancer of the lungs. | (Arias-Pérez et al., 2020; Hussain et al., 2022; Subhanullah et al., 2022) |
| 3 | Carbon Monoxide (CO) |
CO toxicity, neurotoxicity, toxicity, abnormalities in learning behavior in children, autism spectrum disorder (ASD), and Autism | (Manisalidis, Stavropoulou, Stavropoulos, & Bezirtzoglou, 2020; Yang, Shen, Liang, & Society, 2020) |
| 4 | Carbon Dioxide (CO2) | Inflammation, reduction in ability to respond, kidney problems, demineralization of bones, endothelial damage, and oxidative stress. | (Du, Tandoc, Mack, & Siegel, 2020; Jacobson et al., 2019) |
| 5 | Sulfur Dioxide (SO2) | Increases morbidity, cardiovascular and respiratory diseases. |
(Rabiei et al., 2020; Subhanullah et al., 2022; Wu et al., 2020; Zheng, Orellano, Lin, Jiang, & Guan, 2021) |
| 6 | NOx | Respiratory disorders, lung inflammation and reduced lung function, emphysema, bronchitis, and heart disease. | (Boningari & Smirniotis, 2016; Zheng et al., 2021) |
| 7 | Carbon Black and Polyaromatic Hydrocarbons (PAHs) | Bronchitis, cardiovascular issues, lung cancer, exacerbation of pre-existing lungs and hurt diseases, and asthma. | (M. U. Ali et al., 2021; Liu et al., 2020) |
| 8 | Carcinogenic Dioxins | Hepatotoxicity, immunotoxicity, birth defects, and endocrine disruption. Thyroid disorders, pulmonary dysfunction, diabetes, altered testosterone level serum, liver damage, chloracne, loss of appetite, and nausea | (Gul et al., 2021; Helal, Ghanem, & El-Sikaily, 2022) |
| 9 | Fluoride Compounds | Toxic, mutagenic, carcinogenic, disturbed body tissues, and teratogens as well. | (Abdel-Shafy & Mansour, 2016; Mitra et al., 2022) |
| 10 | Heavy Metal | Cause toxicity in some parts of the human body, responsible for neurotoxicity, nephrotoxicity, skin toxicity, hepatotoxicity, and cardiovascular toxicity, | (Al Osman et al., 2019; Mitra et al., 2022) |
| 11 | H2S | Respiratory symptoms, Neurological symptoms, | (Lewis & Copley, 2015) |
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