Related Experiment Video
Updated: May 29, 2025

Author Spotlight: Exploring Cellular Processes by Modeling Ligands in Cryo-EM Maps
Published on: July 19, 2024
Mapping self-avoiding walk on obstacle-ridden lattice onto chelation of heavy metal ions: Monte Carlo study
Viktoria Blavatska1, Jaroslav Ilnytskyi1,2, Erkki Lähderanta3
1Institute for Condensed Matter Physics of the National Academy of Sciences of Ukraine, 1 Svientsitskii Str., UA-79011 Lviv, Ukraine.
Abstract:
Self-avoiding walk (SAW) represents a linear polymer chain on a large scale, neglecting its chemical details and emphasizing the role of its conformational statistics. The role of the latter is important in the formation of agglomerates and complexes involving polymers and organic or inorganic particles, such as polymer-stabilized colloidal suspensions, microemulsions, or micellar solutions. When such particles can be adsorbed on a polymer of considerably larger dimensions than themselves, this setup may represent the chelation of heavy metal ions by polymeric chelants. We consider the SAW of the length N on a cubic lattice ridden by randomly distributed obstacles of the concentration p interpreted as ions. The SAW monomers can bind to the obstacles with variable binding energy ɛ mimicking the formation of the chelation bond. Pruned-enriched Rosenbluth method (PERM) Monte Carlo (MC) algorithm is applied to simulate system behavior. We focus on several relevant properties related to the chelation efficiency and strength, as functions of the variables set {p,N,ɛ}. The results are interpreted in terms of conformational freedom, excluded volume effects, and loop formation for the SAW, and the tendencies being predicted are in agreement with some experimental data.
More Related Videos
05:35Quantification of Metal Leaching in Immobilized Metal Affinity Chromatography
Published on: January 17, 2020
10:31Detection and Recovery of Palladium, Gold and Cobalt Metals from the Urban Mine Using Novel Sensors/Adsorbents Designated with Nanoscale Wagon-wheel-shaped Pores
Published on: December 6, 2015
Related Concept Videos
Extraction: Advanced Methods
Ladder Diagrams: Complexation Equilibria
The formation constant, K1, for the formation of Cd(NH3)2+ complex from cadmium and ammonia is 3.55 × 102. Log K1 (i.e. pNH3) is 2.55, and...
Complexation Equilibria: The Chelate Effect