<?xml version="1.0" encoding="UTF-8"?><rss version="2.0"
	xmlns:content="http://purl.org/rss/1.0/modules/content/"
	xmlns:wfw="http://wellformedweb.org/CommentAPI/"
	xmlns:dc="http://purl.org/dc/elements/1.1/"
	xmlns:atom="http://www.w3.org/2005/Atom"
	xmlns:sy="http://purl.org/rss/1.0/modules/syndication/"
	xmlns:slash="http://purl.org/rss/1.0/modules/slash/"
	>

<channel>
	<title>micropollutant removal &#8211; Science</title>
	<atom:link href="https://scienmag.com/tag/micropollutant-removal/feed/" rel="self" type="application/rss+xml" />
	<link>https://scienmag.com</link>
	<description></description>
	<lastBuildDate>Tue, 06 Oct 2026 13:55:34 +0000</lastBuildDate>
	<language>en-US</language>
	<sy:updatePeriod>
	hourly	</sy:updatePeriod>
	<sy:updateFrequency>
	1	</sy:updateFrequency>
	<generator>https://wordpress.org/?v=7.1.2</generator>

<image>
	<url>https://scienmag.com/wp-content/uploads/2024/07/cropped-scienmag_ico-32x32.jpg</url>
	<title>micropollutant removal &#8211; Science</title>
	<link>https://scienmag.com</link>
	<width>32</width>
	<height>32</height>
</image> 
<site xmlns="com-wordpress:feed-additions:1">73899611</site>	<item>
		<title>Copper Steps Out of Iron&#8217;s Shadow in the Race to Purify Contaminated Water</title>
		<link>https://scienmag.com/copper-steps-out-of-irons-shadow-in-the-race-to-purify-contaminated-water/</link>
		
		<dc:creator><![CDATA[Bethany Barker]]></dc:creator>
		<pubDate>Tue, 06 Oct 2026 13:55:34 +0000</pubDate>
				<category><![CDATA[Chemistry]]></category>
		<category><![CDATA[advanced oxidation processes]]></category>
		<category><![CDATA[Antimicrobial Resistance]]></category>
		<category><![CDATA[antimicrobial resistance mitigation]]></category>
		<category><![CDATA[copper catalysts]]></category>
		<category><![CDATA[copper-based catalysts]]></category>
		<category><![CDATA[Cu(III) oxidation]]></category>
		<category><![CDATA[endocrine disruptors in water]]></category>
		<category><![CDATA[environmental impact of sludge]]></category>
		<category><![CDATA[Fenton reaction]]></category>
		<category><![CDATA[innovative water purification materials]]></category>
		<category><![CDATA[iron-based water purification]]></category>
		<category><![CDATA[metal-organic frameworks]]></category>
		<category><![CDATA[micropollutant removal]]></category>
		<category><![CDATA[micropollutants]]></category>
		<category><![CDATA[pH-sensitive oxidation methods]]></category>
		<category><![CDATA[pharmaceutical and pesticide contaminants]]></category>
		<category><![CDATA[pharmaceuticals in water]]></category>
		<category><![CDATA[Single-atom catalysts]]></category>
		<category><![CDATA[sulfate radicals]]></category>
		<category><![CDATA[sustainable water treatment technologies]]></category>
		<category><![CDATA[wastewater reuse]]></category>
		<category><![CDATA[Water treatment]]></category>
		<guid isPermaLink="false">https://scienmag.com/?p=241570</guid>

					<description><![CDATA[A new review reveals how copper-based advanced oxidation processes could outperform traditional iron Fenton chemistry in destroying persistent micropollutants across a far broader range of water conditions.]]></description>
										<content:encoded><![CDATA[<p>Water is quietly becoming one of the defining challenges of the century. By 2050, roughly four billion people may face severe shortages, and the push to reuse wastewater has never been more urgent. Yet even as treatment plants grow more sophisticated, a stubborn class of contaminants keeps slipping through: pharmaceuticals, pesticides, endocrine-disrupting compounds, and antibiotics that appear in surface waters at concentrations reaching the milligram-per-liter level in many countries. These micropollutants do not merely persist. They reshape microbial communities, disrupt hormones, and accelerate antimicrobial resistance, a threat linked to nearly five million deaths in 2019 and projected to claim as many as ten million lives annually by mid-century.</p>
<p>A comprehensive new review published in Case Studies in Chemical and Environmental Engineering argues that the answer to this problem may lie in an element long overshadowed by its more famous rival. Advanced oxidation processes, which generate highly reactive chemical species capable of shredding organic molecules apart, have traditionally relied on iron, following the classic Fenton chemistry discovered in the late nineteenth century. But iron-based systems carry a punishing constraint: they work well only in acidic conditions, around pH 2.5 to 4, requiring costly acidification and neutralization steps and producing iron-laden sludge that must be disposed of. Copper, the review&#8217;s authors contend, offers a fundamentally more flexible alternative.</p>
<p>The chemistry behind this advantage is striking. Iron(III), the oxidized form that must be recycled back to iron(II) to keep the catalytic cycle turning, precipitates out of solution above pH 4 because of an extraordinarily low solubility product, roughly 4 × 10⁻³⁸. Copper(II), by contrast, remains soluble at neutral pH, with a solubility product about eighteen orders of magnitude higher. More importantly, the rate-limiting reduction step is dramatically faster for copper: copper(II) reacts with hydrogen peroxide at a rate constant of 4.6 × 10² M⁻¹s⁻¹, while the equivalent iron reaction crawls along at 9.1 × 10⁻⁷ M⁻¹s⁻¹. The result is a catalyst that maintains removal efficiencies above 80 percent across the entire pH range, where iron systems collapse once conditions turn neutral or alkaline.</p>
<p>Copper&#8217;s multivalent nature adds another dimension. Unlike iron, which cycles mainly between two oxidation states, copper can shuttle among three: Cu(I), Cu(II), and Cu(III). The Cu(I) reaction with hydrogen peroxide runs roughly four orders of magnitude faster than the iron equivalent, and Cu(III) itself is a formidable oxidant, with a redox potential of 1.7 to 2.4 volts, far exceeding the iron(III)/iron(II) couple. This triple-state flexibility allows copper catalysts to activate a whole family of oxidants, including peroxymonosulfate, peroxydisulfate, hydrogen peroxide, and peracetic acid, through both radical pathways involving hydroxyl and sulfate radicals and non-radical pathways dominated by singlet oxygen or direct electron transfer. Iron systems, by comparison, are overwhelmingly radical-driven.</p>
<p>That dual pathway capability is both a strength and a scientific puzzle. In some copper systems, radical scavengers quench nearly all degradation; in others, radicals contribute almost nothing. The dominant mechanism can shift with pH, moving from radical-dominated oxidation under acidic conditions to Cu(III)-mediated non-radical oxidation at neutral and alkaline values. Part of the confusion stems from detection limits: conventional electron paramagnetic resonance cannot distinguish Cu(III) from hydroxyl or sulfate radicals because their spin-trap signals overlap. The review highlights emerging diagnostic tools, including Raman spectroscopy of the Cu(III)-OH stretching band at 614 cm⁻¹, selective copper chelators, and ultraviolet-visible detection of Cu(III)-periodate complexes, and urges researchers to combine multiple lines of evidence rather than relying on any single method.</p>
<p>Catalyst design is advancing rapidly along several fronts. Simple copper salts are abundant and cheap, with municipal wastewater containing 5 to 10 milligrams per liter of soluble copper, but Cu(II) alone is sluggish at activating oxidants. Adding reductants or ligands helps: gallic acid boosted tetrabromobisphenol A removal from 40 to 80 percent in a Cu(II)/peroxymonosulfate system, while thiosulfate accelerated benzoic acid degradation nearly sixfold. Heterogeneous catalysts perform far better still. Copper oxide activated peroxymonosulfate achieved complete bisphenol A removal where soluble copper managed only 15 percent, and lower-valence Cu₂O outperformed CuO dramatically on similar targets. Bimetallic combinations amplify the effect further; adding iron(III) to zero-valent copper more than doubled acetaminophen degradation beyond the sum of the individual metals, a synergy attributed to denser active sites and faster interfacial electron transfer.</p>
<p>The most transformative platform, however, may be copper integrated with conductive carbon frameworks, particularly single-atom catalysts derived from metal-organic frameworks. When individual copper atoms are anchored within nitrogen-doped carbon matrices, they gain both electronic stabilization and exceptional catalytic versatility. Carbon-coated copper oxide achieved complete tetracycline removal in 40 minutes, double the performance of bare CuO, while a CuBTC metal-organic framework annealed at 300 degrees Celsius degraded bisphenol A completely within 30 minutes with copper leaching below 0.02 percent. Even the coordination geometry matters: Cu-N₄ sites tend to promote radical pathways, whereas unsaturated Cu-N₂ sites drove complete removal of 2,4-dichlorophenol sustained over 14 days. Computational studies using density functional theory now allow researchers to predict how heteroatom doping tunes copper&#8217;s electronic structure and oxidant adsorption, guiding rational design rather than trial and error.</p>
<p>Real-world performance, though, depends on messy details. Oxidant choice matters, with an empirical activity ranking of peroxymonosulfate and peracetic acid above peroxydisulfate and hydrogen peroxide, though the authors caution this trend is not universal. Combining oxidants can be surprisingly powerful: adding hydrogen peroxide to a Cu(II)/peroxymonosulfate system raised naproxen degradation rates 28-fold, because hydrogen peroxide&#8217;s lower redox potential thermodynamically favors the copper redox cycle. Dosage follows a Goldilocks pattern, since excessive oxidant triggers radical self-quenching and excess catalyst increases copper leaching. Water matrix constituents complicate matters further. Anions often scavenge radicals into less reactive secondary species, yet chloride can sometimes enhance degradation by forming copper-chloride complexes. Dissolved organic matter can inhibit oxidation by competing for reactive species, but at low concentrations it may actually stabilize copper redox cycling and act as an electron shuttle.</p>
<p>Safety remains the field&#8217;s central tension. Copper is a more potent inducer of oxidative stress in microorganisms than iron, and World Health Organization guidelines cap copper in surface water at 2 milligrams per liter, well below the 5 milligram-per-liter limit for iron. The review notes that most reported copper leaching falls below regulatory thresholds, with some catalysts releasing as little as 0.003 milligrams per liter over repeated cycles, but it insists compliance alone is insufficient evidence of safety. Chronic low-level release, cumulative accumulation, and shifts in copper speciation during long-term operation all demand scrutiny. Minimizing leaching, the authors argue, should be treated as a primary design criterion rather than an afterthought.</p>
<p>The path from laboratory to treatment plant is still long. Most copper-based systems have been tested only in short-term batch experiments with suspended powder catalysts, and the technology&#8217;s readiness level remains low to medium compared with fully proven iron Fenton processes. The review calls for integrated catalyst-reactor designs, including packed-bed, flow-through, and catalytic-membrane configurations that enable catalyst recovery and continuous operation, alongside techno-economic and life-cycle assessments to confirm genuine environmental benefit. It also urges researchers to look beyond parent-compound removal toward full mineralization, transformation-product identification, and toxicity testing, since partially oxidized byproducts can sometimes be as harmful as the original pollutants. If those challenges can be met, copper&#8217;s pH resilience, oxidant versatility, and rapidly maturing single-atom catalyst designs could position it as the backbone of next-generation water purification, turning an abundant, versatile metal into a decisive weapon against the micropollutants threatening global water security.</p>
<p><strong>Subject of Research:</strong> Copper-based advanced oxidation processes for degrading organic micropollutants in water treatment</p>
<p><strong>Article Title:</strong> Copper-based advanced oxidation processes for micropollutant degradation: A review of reaction mechanisms, modulation strategies, and future applications</p>
<p><strong>Article References:</strong> Ly, Q. V., Nguyen, D. V., Quang, D. V., Kim, T.-H., Hwang, Y., Nguyen, T., Wu, D., &amp; Hur, J. (2026). Copper-based advanced oxidation processes for micropollutant degradation: A review of reaction mechanisms, modulation strategies, and future applications. <em>Case Studies in Chemical and Environmental Engineering, 14</em>, Article 101495. <a href="https://doi.org/10.1016/j.cscee.2026.101495" rel="noopener noreferrer">https://doi.org/10.1016/j.cscee.2026.101495</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1016/j.cscee.2026.101495" rel="noopener noreferrer">10.1016/j.cscee.2026.101495</a></p>
<p><strong>Keywords:</strong> copper catalysts, advanced oxidation processes, micropollutants, water treatment, Fenton reaction, single-atom catalysts, sulfate radicals, Cu(III) oxidation, metal-organic frameworks, pharmaceuticals in water, antimicrobial resistance, wastewater reuse</p>
]]></content:encoded>
					
		
		
		<post-id xmlns="com-wordpress:feed-additions:1">241570</post-id>	</item>
	</channel>
</rss>
