Wednesday, May 25, 2022
Wednesday, December 22, 2021
Video Links
In the past couple of years, I have given quite a few talks and recorded several interviews advocating for nuclear power to mitigate the climate crisis. A number of these are available on YouTube, and I provide links to them here.
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Talks |
Time (min) |
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Keynote address at the Fossil and Renewable Energy Conference; it makes a succinct case for nuclear power. |
25 |
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Discussion with a group of retired scientists: Science for the Bored |
110 |
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ENFL Division of Am. Chem Soc.; Monthly Invited Talk Series |
86 |
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Talk organized by KKBioTech, India |
100 |
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Interviews on Killen Reports |
Time (min) |
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Effects of Climate Change and Solutions |
25 |
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Meaning of Net Zero |
17 |
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Building EV Charging Network |
14 |
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Opportunities for building an Advanced Electric Grid |
28 |
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President Biden’s Energy Initiatives |
29 |
Thursday, September 23, 2021
The Downside of Opposing Nuclear Power
A dear friend recently expressed his strong opposition to nuclear power. When I asked him about his reasons for opposing nuclear power, he cited the amount of low-level radiation from nuclear power plants and suggested that I read Dr. John W. Gofman’s book, An Irreverent Illustrated View of Nuclear Power. Dr. Gofman’s early research was in nuclear physics. He worked on the Manhattan Project. Later, he became a professor of Molecular and Cell Biology at the University of California in Berkeley. The book, published in 1979, is a collection of his lectures and essays opposing development of nuclear power.
After reading Dr. Gofman’s book, I realized why anyone who believed his analysis, would be strongly opposed to nuclear power. He writes convincingly. Gofman’s opposition stems from two main arguments: (1) radiation leakage is inevitable, and all radiation is potentially lethal; and (2) nuclear power is not needed, because the amount of energy that could be obtained from the limited supply of uranium can easily be sourced by other means including co-generation (i.e., producing steam for heating while also generating electricity). I have refuted both these lines of reasoning in my book and my blog. I will briefly reiterate my reasonings here, starting with the second.
Gofman’s argument about the limited amount of energy possible from nuclear power holds only for the light water reactor designs that use barely 5% of the potential energy from the fuel rods before they are replaced. In fact, with reprocessing and breeder reactors, energy from nuclear fission can suffice to serve all humanities needs for centuries. Should nuclear fusion become a reality the amount of realizable energy is virtually limitless. The world clearly needs a whole lot more carbon-free energy than can be garnered from expedients like co-generation (which are not carbon-free).
Gofman bases his antinuclear arguments in what is known as the linear no-threshold hypothesis (LNT). LNT was postulated by Prof. Herman Muller in 1927 based on the mutagenic effect of radiation and the resultant possible cancers. He got the Nobel Prize for medicine in 1946 for that work. In his speech at the award ceremony, he articulated the LNT hypothesis, “that mutation frequency is directly and simply proportional to the dose of irradiation applied and that there is no threshold dose.” The context is important as it was shortly after the horrific bombings of Hiroshima and Nagasaki. Many scientists pleaded with the governments to cease from developing atomic weapons. They were also troubled by the atmospheric testing of the weapons and the fallout thereof. Muller’s finding of radiation induced mutagenesis, coupled with the fact that we do not know which mutation may tip the cell over to becoming cancerous, provided a rationale for LNT. LNT further posits that all effects of radiation are cumulative.
Note that all this happened prior to elucidation of the structure of DNA by Watson and Crick in 1953, nor the subsequent advances in our understanding of how our body copes with DNA ruptures. The LNT hypothesis has been thoroughly debunked and yet, the Nuclear Regulatory Commission continues to impose strict limits on radiation exposure from nuclear power plants to 1 mSv/year, one-third of natural background radiation! We now know that in humans, DNA damage arises naturally about 10,000 times per cell per day! Almost all of them are successfully repaired by the body. Biology is truly amazing! It evolved under the stress of radiation.
Living on earth exposes us to over a 100-times the radiation from a functioning nuclear power plant. Natural radiation levels on average are about 3 mSv/year, and people living at higher altitudes and atop granite rocks receive substantially higher doses. Background radiation in Denver is 10 mSv/yr, but epidemiological studies have not shown people there to have a higher incidence of cancer. In addition to this background radiation, people are routinely exposed to larger amounts of radiation from medical procedures such as chest and dental X-rays, CT-scans, and when traveling by air.
In 2014, the UN body studying the biological effects of radiation issued a statement saying it “no longer recommend(s) multiplying very low doses by large numbers of individuals to estimate numbers of radiation-induced health effects within a population exposed to incremental doses at levels equivalent to or lower than natural background levels." Studies on the fatalities and possible cancers arising from nuclear power plant exposures over the last 70 years show that it has the best record of all energy systems. Even if we include 4000 fatalities from Chernobyl as predicted by LNT (actual number is around 50), nuclear power results on average 0.04 deaths per TWh of electricity generated as compared to 160 deaths per TWh for coal. Please see my blogpost about why I favor nuclear power and another one dealing with some common objections I have heard during my presentations.
By adhering to LNT and strict radiation exposure standards, we have unduly instilled a fear of nuclear power in the general public and made nuclear power unnecessarily expensive. As a direct consequence of that many more coal and other fossil fuel plants were installed. Our response to the fear of radiation has caused many more fatalities. The same result was seen in Fukushima. Fear of radiation prompted the unnecessary evacuation of several hundred thousand people and resulted in over 2000 fatalities from stress and mental anguish. Radiation exposure did not cause a single death.
Gofman uses powerful rhetoric. He calls potential deaths from radiation as “random murders,” and he repeats it over and over again to evoke a visceral response. By his logic, he and others opposed to nuclear power are guilty of more murders as their stance led society to use a more deadly technology! Furthermore, Gofman tells the public to not believe anyone who denies LNT as they are lying. He calls them “sycophants of the elite and powerful.” With statements like that, he basically shuts down any opportunity for a meaningful discussion. No wonder, my friend does not want to engage with me on this subject.
Towards the end of his book, Gofman writes about the billions of energy impoverished people. Yet, he never addresses their need for energy, nor how that could be provided. The human cost of energy poverty is enormous in terms of infant mortality, malnutrition, premature deaths, and lost human potential. Currently, 17,000 children die every day from causes attributable to energy poverty. Let that number sink in. It is comparable to the number of people who perished from the Tsunami that hit Northern Japan in 2011. Imagine now, a similar tsunami striking every day and selectively taking the lives of children under the age of five. Between 1980 and 2005, China lifted 600 million people out of abject poverty while simultaneously reducing infant mortality rate from over 2,000 per day to under 700. This achievement was a result of increasing energy production four-fold, albeit that was mostly from increased use of coal and oil. Nevertheless, the importance of energy in bettering the lives of humans cannot be overstated. If you haven’t seen this 10-minute video by Prof. Rosling, please make time to watch it.
Thursday, January 7, 2021
Open Letter to Secretary Kerry
Congratulations on being picked to be the Czar for Climate in President-elect Biden’s administration. I heard you speak about your role on a couple of different news shows and am pleased to note that you recognize the shortcomings of the Paris Agreement.
The only effective solution that scientists like James Hansen are telling us to embrace, is nuclear power. Nuclear power is the one source of clean energy that is scalable to the levels needed. It is also the has safest record (fewest fatalities per TWh generated) and the smallest environmental footprint, both in terms of area covered and tonnage of commodity materials required per unit of electricity delivered. Yet, our current policies such as subsidies and portfolio standards, and the manner in which electricity is marketed is making nuclear power uncompetitive. The unfounded fear of radiation and years of anti-nuclear misinformation has placed such strict and expensive standards on the nuclear power plants that they are being priced out. In many states even fully functioning nuclear power plants are being shuttered. We have a shortfall of clean electricity, and we are digging ourselves deeper in the hole!
As climate Czar, I hope you will address the market distortions that are at the root of the nuclear power plant closures. Instead of closing them down, we should be extending clean energy credits to them, support their expansion, and invest in demonstration of newer walk-away safe nuclear power plant designs.
Getting the public to embrace nuclear power presents a formidable challenge. Public opposition to nuclear power has its origin in the debunked idea that there is no safe dosage of radiation, and the improper application of the LNT (linear, no threshold) hypothesis to estimate cancer in large populations exposed to low levels of radiation. Without public acceptance of nuclear power, we have no chance to achieving net-zero emissions by 2050 or curbing the devastating effects of climate change. What is urgently needed is a sustained public education and outreach program that undoes the decades of anti-nuclear fear mongering. An office of energy education and public outreach dispelling the fear of nuclear power. There are trade-offs with all energy systems, but the benefits from nuclear power far outweigh the risks.
Good luck to you in your new role!
Respectfully,
Ripudaman Malhotra, PhD
Fellow, American Chemical Society
cmo-ripu.blogspot.com
Friday, November 20, 2020
A New Life for Spent Nuclear Fuel
My friends at EnerChemTek, a Toronto-based consulting company, recently brought to my attention a technology by a company called Infinite Power for harnessing the energy from the radioactive decay of a strontium[1] isotope, 90Sr. (Infinite? Immediately, my skepticism goes on high alert!) The company’s website promotes the technology, which was invented by scientists at the University of New South Wales, as a solution to global energy crisis. It promises abundant (almost inexhaustible) source of inexpensive clean (i.e., carbon-free) electricity that can power the world! My curiosity was piqued.
If true, and it is a big IF, the claims by Infinite Power would constitute a giant step forward for the power-hungry planet. To be sure, deployment of any technology at global scale takes decades, but having a scalable clean technology is a step in the right direction.
Devices for harnessing energy from decaying radioisotopes are often referred to as nuclear batteries, although they are not electrochemical cells. Such batteries produce electricity through various processes: thermoelectric, thermionic, or photovoltaic. Radioisotope thermoelectric generators of RTGs have been used for long duration space exploration missions. Cassini and Galileo probes were powered by a plutonium oxide RTG. The device described by Infinite Power is different and falls under the category of a photoelectric nuclear battery. It uses the electromagnetic emissions resulting from the radioactive decay to produce electricity with photovoltaic (PV) materials.
There were not many details about the technology on the company’s website, which is understandable. After all, if the company is sitting on a gold mine, they would not want to disclose all their secrets. They do mention the basis of their technology, which is that they have fabricated “hardened PV cells” to produce electricity from the radiation emanating from radioactive strontium. The “hardening” allows these PV cells to capture and convert even high energy radiation, exposure to which degrades the garden-variety PV cells.
90Sr has a half-life of 28.3 years and thus it would take a century for its radioactivity to subside to less than a tenth its original intensity. 90Sr decays by emitting a beta-particle (an electron) and forms 90Y, an isotope of yttrium. In turn, the daughter 90Y decays by another beta-emission to stable 90Zr, zirconium. 90Y is extremely radioactive and has a half-life of only 64 hours. The energy of emitted b-particles from 90Sr and 90Y are 0.5 and 2.5 MeV (million electron-volts). Combined, the energy from the radioactive decay of the two isotopes amounts to about 3 MeV. Not all of this energy could be converted to electricity, but this figure places an absolute limit to what is realizable. So how much energy does that represent? How many cubic miles of oil? Or how many TWh of electricity could possibly be generated by this source?
To answer these questions, we need to know (i) how much 90Sr is available—the resource potential, (ii) how the energy of the emitted particles is transformed into electromagnetic radiation, and (iii) the fraction of that energy that is captured by the “hardened PV device,” and finally convert the MeVs into kWh or other commonly used units of electrical energy.
90Sr is not present in natural strontium, but it is present in the spent nuclear fuel. Nuclear power plants have been operating commercially since 1956 when the Calder Hall plant in England began operation. This was a small facility, only 50 MW of capacity; since then, over 400 nuclear power plants have been built and the global installed nuclear capacity has ramped up to over 350 GW. A typical 1-GW nuclear plant generates about 25 to 30 tons of spent fuel each year. While about a third of the spent fuel is being reprocessed in countries like France, Russia, Japan, and the United Kingdom, most of the spent fuel is stored in dry casks at the power plants. The World Nuclear Association estimates the global stockpile of spent nuclear fuel in 2013 to be 250,000 tonnes (metric tons).[2] Isotopes of uranium and plutonium comprise over 95% of the spent fuel. The amount of 90Sr in the spent fuel is on the order of 1%, for a total of 2,500 tonnes. At 3 MeV per decay, the total energy amounts to 2,230 TWh.[3] While 2,230 TWh is a lot of energy (potentially worth over $100 billion), it is less than a tenth of annual global electricity consumption. In 2018 alone, the world consumed 26,000 TWh of electricity.
Clearly, the technology is not the “(a)nswer to climate change” as proclaimed by Infinite Power. However, the fact that I do not know enough about their technology and could be missing a big factor, I am not inclined to simply dismiss their claims mere corporate hype. This technology can still be a significant component of a broader portfolio of clean technologies. As described, the technology is highly modular and lends itself to addressing energy needs under a wide range of situations, such as powering remote villages, industries, and charging stops for electric vehicles, including trucks. There are probably many applications for which this nuclear battery would be particularly suited and therefore be of interest to investors and technology developers.
In this analysis I have assumed that the entire inventory of Sr in the spent fuels is accessible. While methods for chemical extraction of Sr from spent fuel have been developed—for example, the Idaho National Lab has published a processes for extracting almost 100% of 90Sr from the spent fuel with dilute nitric acid—access to the spent fuel will likely present several jurisdictional barriers, and thus limit the overall supply. Reprocessing has been banned in the USA since 1976. Furthermore, a major factor in the cost of the extraction process will be the implementation of safety protocols for handling radioactive materials.
Another important consideration would be the fraction of energy from the decay that could be converted into electric power. I reviewed a patent underlying the company’s technology, but it was very light on details. It says that their technology as being able to use high energy photons from the decay. As mentioned above, 90Sr and 90Y both decay by emitting high energy electrons. The emitted electrons can cause excitation of electrons in other atoms, which would then emit photons that could excite electrons in a PV cell to produce electricity. However, the patent gives no idea of the spectrum of the radiation from their 90Sr source nor the bandwidth of the PV material. Such information would be essential for determining the fraction of the total available energy that can be realized as electric power.
All in all, I find this technology extremely intriguing and hope that further R&D is conducted to answer some of the questions before the technology is advanced to commercialization.
[1] Strontium has chemical properties similar to calcium and is situated right below it in the periodic table. Natural strontium is not radioactive and non-toxic. However, certain isotopes of Sr that are formed during nuclear fission of uranium are radioactive. Although the b-emissions are readily blocked and can penetrate only about 1 cm through the skin, the chemical similarity of strontium and calcium allows 90Sr to get incorporated in the bones, where it can do damage and thus potentially cause cancer.
[2] https://www.world-nuclear.org/information-library/nuclear-fuel-cycle/nuclear-wastes/radioactive-wastes-myths-and-realities.aspx
[3] One eV is the energy released one a charge of a single electron drops by 1 Volt. It is equal to 4.45 x 10-23 Wh. To obtain an estimate of a gram mole of eV we multiply the 4.45 x 10-23 Wh by the Avogadro’s number, 6.02 x 10-23 , to get 26.8 Wh. The 2,000 tonnes of 90Sr correspond to 22.2 million g-moles. Multiplying the moles of 90Sr with the amount of energy per eV, and then multiplying that with 3 x 106 (for 3 MeV per decay) I get 1,800 TWh as the energy released from decaying 90Sr and its daughter 90Y.
Friday, June 26, 2020
Role of Bioenergy in Achieving Sustainability
I was recently
invited to give a keynote address at an international conference on Bioenergy
and Sustainability. Because of the Covid-19 pandemic the conference was held
virtually over Zoom. What follows is an abstract of my presentation; the full lecture can be accessed here.
The word sustainability shares its root with sustenance. In the case of modern society sustenance comes from use of energy, which is derives from many sources: oil, coal, natural gas, hydroelectric, nuclear, wind, solar, and biomass. Annual consumption of global energy is equivalent to 4 cubic miles of oil (cmo), about 3 of which are obtained from fossil sources: oil, coal, and natural gas.
The dominance of fossil energy in the global mix has been longstanding—ever since the dawn of the industrial revolution in the mid nineteenth century. As a result, the concentration of carbon dioxide in the atmosphere has increased from 280 ppm to over 400 ppm and continues to rise. CO2 is a greenhouse gas and it and now threatens life as we know it from the resulting climate change. To avert devastation from climate change or constrained energy supply, the world desperately needs sources of clean, carbon-free energy that together can scale to cmo levels.
Much emphasis has been placed in
recent years on resources like wind and solar to provide clean electricity.
Technological advances have led to dramatic reductions in their costs and their
advocates now propose a future powered entirely by them. However, these costs
do not include the cost of storage, currently provided by natural gas, nor do
they consider the environmental cost of mining for the materials needed for
their installation. Scaling them to a 100%-renewables scenario will strain the
global supply of commodities like steel, concrete, glass, and aluminum; clearly
not a sustainable scenario.
Burning biomass has been proposed as a fuel source; indeed, prior to the industrial revolution the world once derived 100% of its energy from bio sources. Unlike wind and solar, bioenergy sources are storable and do not suffer from intermittency. However, biomass use also results in emitting CO2. The only reason these emissions are not counted is that the regrowth of the biomass would take an equivalent amount of CO2 out of the air. For this assumption to hold, it is important that we consider harvesting only rapidly growing biomass or annual crops.
Global biomass production is substantial; it is estimated that 75 Gt (gigatons, or 109 tons) of biomass are produced annually. Most of the biomass is in the forests and oceans and not readily recoverable, nor is it desirable to cut down this “sequestered” carbon and burn it. The estimate for recoverable biomass resource is only 3 Gt/y. At a heating value of 15 GJ/t (gigajoules/ton) the energy from these 3 Gt of biomass would correspond to only 0.3 cmo. The low energy density of biomass translates into large areas over which the biomass to be harvested and transported to the power plant: 160 sq. miles of fast growing trees each year to power a single 100 MW plant.
Clearly, we cannot rely on biomass to meet global energy demand for clean energy. Yet, there are some applications where energy from biomass is uniquely suited. Production biofuels is one such example, and many conversion of starch in grains into bioethanol is a thriving business—thanks in large part to the support the industry receives from various state agencies. There are also processes for converting lignocellulosic wastes into biofuels, although there deployment has been hampered by high costs. The main reason for using biofuels is to reduce greenhouse gas emissions; however, on a life-cycle basis the biofuels reduce greenhouse gas emissions between 20% and 40%!
Co-firing biomass, particularly waste biomass, may provide only a limited amount of energy, but it would help enormously with waste management since many municipalities are running out of landfill space. Likewise, utilizing agricultural waste in an engineered system rather than open-field burning would go a long way in reducing urban pollution in many countries.
True sustainability demands a scalable source of clean and cheap electricity. Nuclear power can deliver that. It has the smallest environmental footprint and the best safety record, but public concerns over plant safety, long-term storage of waste, and cost are considerable obstacles. Getting the public to embrace nuclear power is a Herculean task, but it must be undertaken. We have to (i) educate the public (ii) stop closing functional nuclear power plants; (iii) expand the fleet of nuclear power plants; and (iv) develop and deploy the next generation of walk-away safe plants that can also use the spent fuel as a resource.
Thursday, April 30, 2020
Planet of the Humans: A Review
As an antidote to the movie, I suggest watching this interview by Michael Killen of me and Alex Cannara. https://youtu.be/IjhnE-hgx0M


