Phosphorus detective
Photos by Kathy F. Atkinson and courtesy of Deb Jaisi July 16, 2026
91原创鈥檚 Deb Jaisi innovates how to trace environmental contaminant
You may remember seeing phosphorus on a high school chemistry test or two. It鈥檚 one of the less abundant elements found on our Earth, yet needed more for all living things.
鈥淥f all the elements on the periodic table, phosphorus has a very extreme characteristic,鈥 said Deb Jaisi, professor of environmental biogeochemistry in the 91原创 College of Agriculture and Natural Resources. 鈥淚t makes us all alive and it makes us all die.鈥
It鈥檚 a double-edged sword. Phosphorus is the backbone of our DNA, and builds our bones and teeth. But too much phosphorus can damage kidneys and increase the risk of heart failure.
Phosphorus gives plants their daily nutritional needs. But whatever phosphorus a plant can鈥檛 consume stays in the environment. It creeps into waterways and speeds up algae growth that can kill fish and aquatic plants.
Fascinated by these properties, Jaisi has dedicated his academic career to exploring phosphorus and its presence in the environment. His innovative research has unlocked new ways to pinpoint where the phosphorus causing environmental damage is coming from. The 91原创 soil chemist and Fulbright U.S. Scholar was recognized in June at the World Congress of Soil Sciences in China as a 2026 recipient of the Innovation Award, an honor given to one scientist around the world every two years.
鈥淚t鈥檚 a big honor,鈥 Jaisi said.
Phosphorus forensics
Jaisi thinks of himself as a phosphorus detective. The big mystery: Where the phosphorus in the environment actually comes from.
鈥淚s it coming from what farmers apply to their crops?鈥 Jaisi said. 鈥淚s it coming from what the soil already had? Or is there another way, such as geological sources?鈥
The geochemist uses stable isotopes to solve the mystery on earth and track elements in the environment.聽
Isotopes are families of the same element where the atoms each have the same number of protons but different numbers of neutrons than the basic form of the element, making them have different masses. Think of it like holding five identical chocolate bars, but some are heavier than others.聽
In Jaisi鈥檚 field, isotopes can clue researchers into where a chemical element comes from.
鈥淭he oxygen isotopes in phosphate act like a fingerprint as it moves from farm soil into water,鈥 Jaisi said. 鈥淭hey help us pinpoint whether the phosphorus came from fertilizer, manure, or other sources. Identifying those sources helps us diagnose and solve the problem.鈥
Two forms of phosphorus can be found in the environment: inorganic and organic. Inorganic phosphorus is the simplest form, most readily accessible to soil microorganisms and plants. Organic phosphorus compounds are much more complex, making them difficult to identify and track in the environment.聽
That鈥檚 where Jaisi鈥檚 research comes in. While at Yale University from 2007鈥2010 for postdoctoral research as a Bateman Scholar, his adviser, , professor of earth and planetary sciences, was using an oxygen isotope system with phosphate molecules.聽
Jaisi was captivated by this concept and in his career at 91原创 developed a new method to measure isotopes of organic phosphorus compounds, using a tool called an electrospray ionization-based Orbitrap isotope ratio mass spectrometer (Orbitrap IRMS). The tandem mass spectrometry based isotope measuring method originated at the California Institute for Technology, where Jaisi visited as the National Science Foundation (NSF) Fellow, but is used for other compounds, not phosphorus.
To measure isotopes of organic phosphorus compounds, Jaisi injects a solution containing about 20 nanograms (a billionth of a gram) of phytate, one type of organic phosphorus compound, into the Orbitrap IRMS. The molecules travel through ionization and then a mass filter to separate phytate ions from any contaminant ions. Then they are channeled to a mass spectrometer to measure accurate isotopes. Once Jaisi gets the fingerprint, he can map out where it came from based on known sources of the contaminant.
鈥淚sotopes give so much power,鈥 Jaisi said. 鈥淚sotope fingerprinting is the only robust way to track where contaminants come from.鈥澛
His new method allows researchers to identify isotope fingerprints across hundreds of organic phosphorus compounds 鈥 something that until now was essentially a black box.聽
鈥淲e did not have an appropriate method to identify the source or track how organic phosphorus converts into inorganic forms 鈥 which fuel biological activity, including algal blooms,鈥 he said.聽
Protecting waterways
Sandy Raimondo, chair of 91原创鈥檚 Department of Plant and Soil Sciences, praised Jaisi鈥檚 research as being 鈥減aramount鈥 to protecting waterways like the Delaware and Chesapeake Bays.聽
鈥淗is research has global impacts, which is really impressive,鈥 Raimondo said, 鈥渂ut it also serves a major role in Delaware, where agriculture is practiced in such close proximity to coasts and the sensitive estuarine systems of the Delaware and Chesapeake Bays. Estuaries, such as our surrounding bays, are the most productive ecosystems on earth, and we have a responsibility to ensure their sustainability.鈥澛
Ultimately, Jaisi hopes the method he鈥檚 developed to track organic phosphorus compounds in the environment could inform strategies to manage water pollution.
The Chesapeake Bay watershed 鈥 the largest estuary in the U.S. 鈥 is home to more than 18 million people and 3,600 species of plants and animals. The bay suffers from excess nutrient pollution from contaminants such as phosphorus (), which drives algae blooms that trigger 鈥渄ead zones.鈥 These 鈥渄ead zones鈥 remove oxygen from the water, killing fish and other aquatic species.
鈥淚t鈥檚 a critical piece of information for management,鈥 Jaisi said. 鈥淚f we know what forms of phosphorus are causing the problem, or what source contributes more to the problem, then we can have a very directed effort on specific sources to control.鈥澛
Jaisi has also looked into pre-emptive solutions of this problem. Phosphorus is a key ingredient in the fertilizer that farmers apply to their crops to feed the world, and Jaisi sees room for improvement in modern-day synthetic fertilizers. He is developing next-generation nanofertilizer, a fertilizer that improves nutrient use efficiency while reducing environmental impacts.
There鈥檚 plenty of room for growth in Jaisi鈥檚 field, and room for more soil scientists interested in the isotope method Jaisi has been working on.聽
Devraj Maidali, a doctoral student in Jaisi鈥檚 , is studying an organic phosphorus molecule called inositol phosphate, which is present in soils. He uses the Orbitrap IRMS to measure oxygen isotopes. Methods to measure these oxygen isotopes in the inositol-phosphate molecules using the Orbitrap IRMS are not fully developed, so Maidali hopes to refine a method by learning from Jaisi鈥檚 expertise.
鈥淲orking with an instrument like Orbitrap IRMS needs great patience, troubleshooting skills, and theoretical knowledge about analytical chemistry,鈥 Maidali said. 鈥淭he old school supervision patterns Dr. Jaisi brings to EBL is a great place for graduate students like me to develop a scientific career.鈥
As Jaisi works with students like Maidali, he hopes to see long-term solutions for phosphorus and other nutrient-related pollution in waterways, and more students with a thirst to solve these problems.聽
鈥淲ater quality is a major issue, driven largely by unsustainable agricultural practices 鈥 a generational challenge,鈥 Jaisi said. 鈥淲e still don鈥檛 fully understand how plants choose among different forms of phosphorus in soil, which means excess nutrients can end up in waterways. Finding answers will require innovative technologies and the next generation of researchers trained to use them."聽
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