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Corrigendum to “How molecular interactions tune the characteristic time of nanocomposite colloidal sensors” [J. Colloid Interf. Sci. 616 (2022) 668–678, (Journal of Colloid and Interface Science (2022) 616(668-678) (S0021979722003320), (10.1016/j.jcis.2022.02.100))

  • Barathan Rajendran
  • , Xiao Chen
  • , Zhong Li
  • , Zhixin Zhan
  • , K. B. Goh*
  • *此作品的通讯作者
  • Monash University Malaysia
  • Nanyang Technological University
  • University of Pittsburgh

科研成果: 期刊稿件评论/辩论

摘要

Against good publication practice, key publications of relevance to the study were not cited as they should have been in our original manuscript, and we apologize for the omission. First, the authors regret that the following studies published previously are relevant to the underlying framework of the diffusion and reaction characteristics times for our core-shell system but were not cited in the study: [1] Angioletti-Uberti, S., Lu, Y., Ballauff, M., & Dzubiella, J. (2015). Theory of solvation-controlled reactions in stimuli-responsive nanoreactors. The Journal of Physical Chemistry C, 119(27), 15723–15730.[2] Roa, R., Kim, W. K., Kanduč, M., Dzubiella, J., & Angioletti-Uberti, S. (2017). Catalyzed bimolecular reactions in responsive nanoreactors. ACS catalysis, 7(9), 5604–5611.[3] Kanduč, M., Kim, W. K., Roa, R., & Dzubiella, J. (2020). Modeling of stimuli-responsive nanoreactors: rational rate control towards the design of colloidal enzymes. Molecular Systems Design & Engineering, 5(3), 602–619.[4] Adroher-Benítez, I., Moncho-Jordá, A., & Dzubiella, J. (2017). Sorption and spatial distribution of protein globules in charged hydrogel particles. Langmuir, 33(18), 4567–4577.[5] Wolde-Kidan, A., Herrmann, A., Prause, A., Gradzielski, M., Haag, R., Block, S., & Netz, R. R. (2021). Particle diffusivity and free-energy profiles in hydrogels from time-resolved penetration data. Biophysical Journal, 120(3), 463–475.In addition, through our theoretical model, we reported that the anti/negative/inverse-correlation relationship between diffusivity and partitioning rendered the sensing time non-trivial due the interplay between steric and hydrophobic effects, which is consistent with previously published experimental [6] and simulation [7–9] data: [6] Parthasarathy, R., Misra, A., Park, J., Ye, Q., & Spencer, P. (2012). Diffusion coefficients of water and leachables in methacrylate-based crosslinked polymers using absorption experiments. Journal of Materials Science: Materials in Medicine, 23(5), 1157–1172[7] Boggara, M. B., & Krishnamoorti, R. (2010). Partitioning of nonsteroidal antiinflammatory drugs in lipid membranes: a molecular dynamics simulation study. Biophysical journal, 98(4), 586–595.[8] Kim, W. K., Kanduč, M., Roa, R., & Dzubiella, J. (2019). Tuning the permeability of dense membranes by shaping nanoscale potentials. Physical Review Letters, 122(10), 108001.[9] Kim, W. K., Chudoba, R., Milster, S., Roa, R., Kanduč, M., & Dzubiella, J. (2020). Tuning the selective permeability of polydisperse polymer networks. Soft Matter, 16(35), 8144–8154.We apologize again for the inconvenience caused by this omission.

源语言英语
页(从-至)1023
页数1
期刊Journal of Colloid and Interface Science
625
DOI
出版状态已出版 - 11月 2022

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