Eric Vejerano receives National Science Foundation award to investigate how sunscreens
form persistent free radicals
Eric Vejerano receives National Science Foundation award to investigate how sunscreens
form persistent free radicals
Posted on: August 18, 2026; Updated on: August 5, 2026
August 18, 2026
The National Science Foundation (NSF) has awarded environmental health sciences associate
professor Eric Vejerano a grant of nearly $620,000 to determine how and why common sunscreen ingredients form
persistent free radicals (PFRs) when they are exposed to light. Funded through the
NSF’s Chemical, Bioengineering, Environmental and Transport Systems Nanoscale Interactions
Program, the project names Vejerano as sole principal investigator and follows directly
from his lab’s recent discovery that every commercial sunscreen it tested produced
these long-lived radicals under artificial light.
This award lets us answer the harder questions. How do these radicals form on the
particle surface? How long do they survive? And why does water sometimes shut them
down and sometimes make them worse?
Eric Vejerano
The new award, titled “Formation of Persistent Free Radicals in Sunscreens During
Light Exposure,” moves the work from observation to mechanism. The earlier study, published in Environmental Science & Technology Letters, showed that sunscreens
form PFRs. This project will explain how they form, how long they last, and how seawater
changes their behavior. Vejerano’s lab will determine how sunscreen particles generate
reactive chemicals in air and seawater — and what that may mean for coral reefs.
“We had shown that sunscreens produce persistent free radicals. What we did not know
was the mechanism behind it,” Vejerano says. “This award lets us answer the harder
questions. How do these radicals form on the particle surface? How long do they survive?
And why does water sometimes shut them down and sometimes make them worse?”
Eric Vejerano is an associate professor in the Department of Environmental Health
Sciences.
Arriving at the Arnold School in 2017, Vejerano’s expertise centers on air quality
–more specifically, how nanoparticles interact with environmental pollutants. A member
of the South Carolina SmartState Center for Environmental Nanoscience and Risk (CENR), his NSF-funded research examines the nature, sources and impacts of persistent
free radicals.
For decades, PFR research focused on particles created through combustion and other
industrial processes. Vejerano’s lab has steadily expanded that picture, first by
identifying biogenic PFRs in unexpected sources such as leaves, and more recently
by showing that the sunscreens people apply every day can generate radicals that linger
long after the light is gone. That earlier work also produced a surprise: while adding
water reduced PFR output for most of the sunscreens tested, one sample produced more,
raising concerns about what happens when these products wash into the ocean.
This project takes aim at that open question. Two of the most widely used active ingredients
in mineral sunscreens, zinc oxide and titanium dioxide, are tiny particles that can
generate reactive chemicals when sunlight strikes them. Vejerano’s team will measure
how these reactive substances form and decay in both air and water, identify how sunlight
and seawater change their behavior, and explain how the surfaces of the particles
control the process. Using electron spin resonance spectroscopy and simulated sunlight
chamber experiments, the researchers will track the radicals and the reactive oxygen
species they spin off under conditions meant to mimic a coral reef.
The goal is knowledge that manufacturers, coastal managers and the public can actually
use. By linking a particle’s composition and surface chemistry to how long its radicals
persist, the work aims to support safer sunscreen formulations that preserve protection
from the sun while reducing the risk to marine ecosystems and human health.
“Our results point to the need to reconsider certain formulations that are prone to
producing these radicals,” Vejerano says. “If we understand the chemistry, we can
help design products that protect people and protect coral reefs at the same time.”
The award also carries a teaching mission. Vejerano will engage graduate, undergraduate,
and high school students through hands-on research and structured mentoring, with
two graduate students each helping to guide several younger trainees per year. He
plans to work with University of South Carolina summer research internships and regional
high schools to broaden participation in environmental science and strengthen the
pipeline of students entering science, technology, engineering, and mathematics fields.
Find out more
The SmartState Center for Environmental Nanoscience and Risk (CENR) investigates the
effects and behaviors of manufactured and natural nanoparticles on environmental and
human health. CENR also develops low-hazard and low-risk nanotechnologies for the
benefit of human and environmental health.