ANS is committed to advancing, fostering, and promoting the development and application of nuclear sciences and technologies to benefit society.
Explore the many uses for nuclear science and its impact on energy, the environment, healthcare, food, and more.
Explore membership for yourself or for your organization.
Conference Spotlight
2026 Nuclear Energy Conference & Expo (NECX)
August 24–27, 2026
Dallas, TX|Hilton Anatole
Latest Magazine Issues
Aug 2026
Jan 2026
2026
Latest Journal Issues
Nuclear Science and Engineering
October 2026
Nuclear Technology
September 2026
Fusion Science and Technology
August 2026
Latest News
Diablo Canyon receives partial Civil Nuclear Credit payment
Pacific Gas and Electric has received a federal credit payment of $271 million from the Department of Energy under the DOE’s Civil Nuclear Credit (CNC) Program, which was set up in 2022 as a $6 billion federal strategic investment to help preserve the existing U.S. nuclear reactor fleet. The Award Cycle 1 funds just disbursed cover extended operations for Diablo Canyon-1, with the DOE noting that Unit 2 will become eligible for a CNC payment after completion of the 2025 award year audit.
Ian P. Knudsen, David R. Harding
Fusion Science and Technology | Volume 82 | Number 5 | July 2026 | Pages 1014-1022
Research Article | doi.org/10.1080/15361055.2025.2540201
Articles are hosted by Taylor and Francis Online.
Polymer coatings with submicrometer smoothness and constant thickness are a required component in a variety of inertial confinement fusion experiments. Smoothness is important for minimizing Rayleigh-Taylor-driven hydrodynamic instabilities, and uniform thickness is important for uniform shock propagation and shell convergence, both of which are critical phenomena that affect the experiment. The preferred polymer coating method is to vapor deposit the parylene-N polymer because it provides nominally smooth conformal coatings. As the coating thickness exceeds 5 µm, however, dome-shaped nodular growth defects develop and the thickness will vary by up to 17% over a distance of 3 cm.
This study presents a deterministic method for achieving uniform film thicknesses with ±2% variability over 3 cm and a predictive method to control the thickness to within 5% of the desired value. A coating smoothness of ∼50 nm rms, measured over 40 000 µm2, was achieved by adding additional surfaces near the substrates. This additional area improved the thickness uniformity, an effect that is attributed to the low sticking coefficient of the parylene monomer.