Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 52 checked references that resolve
resolves10.1038/nature13767High winter ozone pollution from carbonyl photolysis in an oil and gas basin
resolves10.5194/acp-16-1895-2016Contribution of ship emissions to the concentration and deposition of air pollutants in Europe
resolves10.1080/00908310490479114A New Perspective about Recovering SO<sub>2</sub>Offgas in Coal Power Plants: Energy Saving. Part I. Regenerable Wet Methods
resolves10.1080/00908310490479123A New Perspective about Recovering SO<sub>2</sub>Offgas in Coal Power Plants: Energy Saving. Part II. Regenerable Dry Methods
resolves10.1021/ja401061mIrreversible Network Transformation in a Dynamic Porous Host Catalyzed by Sulfur Dioxide
resolves10.1002/adma.201606929Ultrahigh and Selective SO<sub>2</sub> Uptake in Inorganic Anion‐Pillared Hybrid Porous Materials
resolves10.1021/jacs.8b08433Exceptional Adsorption and Binding of Sulfur Dioxide in a Robust Zirconium-Based Metal–Organic Framework
resolves10.1021/la00016a043Roles of Surface Oxygen Groups on Poly(acrylonitrile)-Based Active Carbon Fibers in SO2 Adsorption
resolves10.1039/C4NJ02093FA UiO-66 analogue with uncoordinated carboxylic acids for the broad-spectrum removal of toxic chemicals
resolves10.1021/cg9014948Gas-Induced Expansion and Contraction of a Fluorinated Metal−Organic Framework
resolves10.1021/ic902397wPrussian Blue Analogues for CO<sub>2</sub> and SO<sub>2</sub> Capture and Separation Applications
resolves10.1039/C6CS00603EStructural and dynamic studies of substrate binding in porous metal–organic frameworks
resolves10.1021/cm401270bMechanism of Preferential Adsorption of SO<sub>2</sub> into Two Microporous Paddle Wheel Frameworks M(bdc)(ted)<sub>0.5</sub>
resolves10.1038/nchem.1457Selectivity and direct visualization of carbon dioxide and sulfur dioxide in a decorated porous host
resolves10.1002/adma.201602338Selective Adsorption of Sulfur Dioxide in a Robust Metal–Organic Framework Material
resolves10.1039/C7TA10538JHighly sensitive and selective SO
<sub>2</sub>
MOF sensor: the integration of MFM-300 MOF as a sensitive layer on a capacitive interdigitated electrode
resolves10.1016/j.apcatb.2005.10.041Reactivity of NO/NO2–NH3 SCR system for diesel exhaust aftertreatment: Identification of the reaction network as a function of temperature and NO2 feed content
resolves10.1016/S0926-3373(98)00040-XChemical and mechanistic aspects of the selective catalytic reduction of NO by ammonia over oxide catalysts: A review
resolves10.1039/B305874NStudying the NO
<sub>x</sub>
-trap mechanism over a Pt-Rh/Ba/Al
<sub>2</sub>
O
<sub>3</sub>
catalyst by operando FT-IR spectroscopy
resolves10.1080/01614940802480122The State of the Art in Selective Catalytic Reduction of NO<sub>x</sub>by Ammonia Using Metal‐Exchanged Zeolite Catalysts
resolves10.1021/ie50451a006Inhibition of Polymerization - Laboratory and Plant Control of Popcorn Polymer Growth
resolves10.1021/am100790vReactive Adsorption of NO<sub>2</sub> on Copper-Based Metal−Organic Framework and Graphite Oxide/Metal−Organic Framework Composites
resolves10.1021/la302869mInteractions of NO<sub>2</sub> with Zr-Based MOF: Effects of the Size of Organic Linkers on NO<sub>2</sub> Adsorption at Ambient Conditions
resolves10.1016/j.micromeso.2014.01.009Effect of amine modification on the properties of zirconium–carboxylic acid based materials and their applications as NO2 adsorbents at ambient conditions
resolves10.1002/anie.201601782Extraordinary NO<sub>2</sub> Removal by the Metal–Organic Framework UiO‐66‐NH<sub>2</sub>
resolves10.1021/am402305uCe(III) Doped Zr-Based MOFs as Excellent NO<sub>2</sub>Adsorbents at Ambient Conditions
resolves10.1063/1.443414The structure of dinitrogen tetroxide N2O4: Neutron diffraction study at 100, 60, and 20 K and <i>ab initio</i> theoretical calculations
resolves10.1021/ja045123oRod Packings and Metal−Organic Frameworks Constructed from Rod-Shaped Secondary Building Units
The 9 references without a DOI — listed, not checked
no DOI — not checkedEuropean Environment Agency. Sulphur dioxide (SO2) emissions. Indicator codes: APE 001. EEA https://www.eea.europa.eu/data-and-maps/indicators/eea-32-sulphur-dioxide-so2-emissions-1 (2015).
no DOI — not checkedEuropean Environment Agency. Nitrogen dioxides (NOx) emissions. Indicator codes: APE 002. EEA https://www.eea.europa.eu/data-and-maps/indicators/eea-32-nitrogen-oxides-nox-emissions-1/assessment.2010-08-19.0140149032-3 (2018).
no DOI — not checkedEuropean Environment Agency. EEA: Air Quality in Europe-2017 report. Report no. 13/2017 (EEA, 2017).
no DOI — not checkedUnited States Environmental Protection Agency. Acid Rain and Related Programs: 2006 Progress Report (EPA, 2006).
no DOI — not checkedUnited States Environmental Protection Agency. EPA base case v.4.10: chapter 5: emission control technologies. EPA https://www.epa.gov/sites/production/files/2015-07/documents/chapter_5_emission_control_technologies.pdf (2010).
no DOI — not checkedEuropean Environment Agency. The impact of international shipping on European air quality and climate forcing: Technical Report No. 4/2013 (EEA, 2013).
no DOI — not checkedJordan, R. J. The feasibility of wet scrubbing for treating waste-to-energy flue gas. J. Air Waste Manag. Assoc. 37, 422–430 (1987).
no DOI — not checkedUnited States Environmental Protection Agency. Sulfur oxides control technology series: flue gas desulfurization magnesium oxide process, summary report No. 4/1981 (EPA, 1981).
no DOI — not checkedUnited States Environmental Protection Agency. Technical Bulletin: Nitrogen Oxides (NO
x
), Why and How They are Controlled (EPA, 1999).
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