Connelly, N. G., Damhus, T., Hartshorn, R. M. & Hutton, A. T. Nomenclature of Inorganic Chemistry—IUPAC Suggestions 2005. Division of Chemical Nomenclature and Construction Illustration (RSC Publishing, 2005).
Dushyantha, N. et al. The story of uncommon earth components (REEs): occurrences, world distribution, genesis, geology, mineralogy and world manufacturing. Ore Geol. Rev. 122, 103521 (2020).
Liu, J. et al. Uncommon earth single-atom catalysts for nitrogen and carbon dioxide discount. ACS Nano 14, 1093–1101 (2020).
Hernandez-Fernandez, P. et al. Mass-selected nanoparticles of PtxY as mannequin catalysts for oxygen electroreduction. Nat. Chem. 6, 732–738 (2014).
Rinehart, J. D., Fang, M., Evans, W. J. & Lengthy, J. R. A N23– radical-bridged terbium complicated exhibiting magnetic hysteresis at 14 Okay. J. Am. Chem. Soc. 133, 14236–14239 (2011).
Takagi, Okay., Nakayama, H., Ozaki, Okay. & Kobayashi, Okay. Fabrication of high-performance Sm–Fe–N isotropic bulk magnets by a mixture of high-pressure compaction and present sintering. J. Magn. Magn. Mater. 324, 1337–1341 (2012).
Tao, H., Zhao, C., Zhang, R. & Wu, J. Uncommon earth component boosting temperature stability of (Okay,Na)NbO3-based ceramics. J. Alloys Compd. 795, 401–407 (2019).
Li, C., Ren, C., Ma, Y., He, J. & Guo, H. Results of uncommon earth oxides on microstructures and thermo-physical properties of hafnia ceramics. J. Mater. Sci. Technol. 72, 144–153 (2021).
Zhong, Y. et al. In vivo molecular imaging for immunotherapy utilizing ultra-bright near-infrared-IIb rare-earth nanoparticles. Nat. Biotechnol. 37, 1322–1331 (2019).
Zhao, J. et al. Single-nanocrystal sensitivity achieved by enhanced upconversion luminescence. Nat. Nanotechnol. 8, 729–734 (2013).
Tong, J. & Fang, Y. Enhanced lithium storage functionality of Li3V2(PO4)3@C co-modified with graphene and Ce3+ doping as high-power cathode for lithium-ion batteries. J. Phys. Chem. Solids 111, 349–354 (2017).
Domínguez-Crespo, M. A., Torres-Huerta, A. M., Brachetti-Sibaja, B. & Flores-Vela, A. Electrochemical efficiency of Ni–RE (RE = uncommon earth) as electrode materials for hydrogen evolution response in alkaline medium. Int. J. Hydrogen Vitality 36, 135–151 (2011).
Zepf, V. in Uncommon Earth Parts: A New Strategy to the Nexus of Provide, Demand and Use: Exemplified alongside the Use of Neodymium in Everlasting Magnets 11–39 (Springer, 2013).
El-Taher, A. Uncommon earth components content material in geological samples from jap desert, Egypt, decided by instrumental neutron activation evaluation. Appl. Radiat. Isot. 68, 1859–1863 (2010).
Cornejo-Ponce, L., Peralta-Zamora, P. & Bueno, M. I. M. S. Pre-concentration of uncommon earths utilizing silica gel loaded with 1-(2-pyridylazo)-2-naphthol (PAN) and willpower by power dispersive X-ray fluorescence. Talanta 46, 1371–1378 (1998).
Hirata, S., Kajiya, T., Aihara, M., Honda, Okay. & Shikino, O. Dedication of uncommon earth components in seawater by on-line column preconcentration inductively coupled plasma mass spectrometry. Talanta 58, 1185–1194 (2002).
Balaram, V. Uncommon earth components: a overview of purposes, incidence, exploration, evaluation, recycling, and environmental impression. Geosci. Entrance. 10, 1285–1303 (2019).
Silachyov, I. Y. Mixture of instrumental neutron activation evaluation with X-ray fluorescence spectrometry for the willpower of rare-earth components in geological samples. J. Anal. Chem. 75, 878–889 (2020).
Verni, E. R. et al. REE profiling in primary volcanic rocks after ultrasonic pattern therapy and ICPMS evaluation with oxide ion formation in ICP enriched with O2. Microchem. J. 130, 14–20 (2017).
Manrao, E. A. et al. Studying DNA at single-nucleotide decision with a mutant MspA nanopore and phi29 DNA polymerase. Nat. Biotechnol. 30, 349–353 (2012).
Cherf, G. M. et al. Automated ahead and reverse ratcheting of DNA in a nanopore at 5-Å precision. Nat. Biotechnol. 30, 344–348 (2012).
Derrington, I. M. et al. Nanopore DNA sequencing with MspA. Proc. Natl Acad. Sci. USA 107, 16060–16065 (2010).
Zhang, Y. et al. Peptide sequencing primarily based on host–visitor interaction-assisted nanopore sensing. Nat. Strategies 21, 102–109 (2023).
Zhang, M. et al. Actual-time detection of 20 amino acids and discrimination of pathologically related peptides with functionalized nanopore. Nat. Strategies 21, 609–618 (2024).
Wang, Okay. et al. Unambiguous discrimination of all 20 proteinogenic amino acids and their modifications by nanopore. Nat. Strategies 21, 92–101 (2023).
Xin, Okay. L. et al. 3D blockage mapping for figuring out familial level mutations in single amyloid-β peptides with a nanopore. Angew. Chem. Int. Ed. 61, e202209970 (2022).
Versloot, R. C. A., Straathof, S. A. P., Stouwie, G., Tadema, M. J. & Maglia, G. β-Barrel nanopores with an acidic−fragrant sensing area determine proteinogenic peptides at low pH. ACS Nano 16, 7258–7268 (2022).
Schmid, S., Stömmer, P., Dietz, H. & Dekker, C. Nanopore electro-osmotic entice for the label-free examine of single proteins and their conformations. Nat. Nanotechnol. 16, 1244–1250 (2021).
Liu, Y. et al. Machine studying assisted simultaneous structural profiling of otherwise charged proteins in a Mycobacterium smegmatis porin A (MspA) electroosmotic entice. J. Am. Chem. Soc. 144, 757–768 (2022).
Boersma, A. J., Mind, Okay. L. & Bayley, H. Actual-time stochastic detection of a number of neurotransmitters with a protein nanopore. ACS Nano 6, 5304–5308 (2012).
Zhang, X. et al. Actual-time sensing of neurotransmitters by functionalized nanopores embedded in a single reside cell. Mol. Biomed. 2, 6 (2021).
Xing, X. L. et al. Single molecule DNA evaluation primarily based on atomic-controllable nanopores in covalent natural frameworks. Nano Lett. 22, 1358–1365 (2022).
Wang, Y. et al. Structural-profiling of low molecular weight RNAs by nanopore trapping/translocation utilizing Mycobacterium smegmatis porin A. Nat. Commun. 12, 3368 (2021).
Liu, Y. et al. Allosteric switching of calmodulin in a Mycobacterium smegmatis porin A (MspA) nanopore-trap. Angew. Chem. Int. Ed. 60, 23863–23870 (2021).
Ramirez, P. et al. Nanopore cost inversion and present–voltage curves in mixtures of uneven electrolytes. J. Membr. Sci. 563, 633–642 (2018).
Han, Y., Zhou, S., Wang, L. & Guan, X. Nanopore again titration evaluation of dipicolinic acid. Electrophoresis 36, 467–470 (2014).
Faller, M., Niederweis, M. & Schulz, G. E. The construction of a mycobacterial outer-membrane channel. Science 303, 1189–1192 (2004).
Butler, T. Z., Pavlenok, M., Derrington, I. M., Niederweis, M. & Gundlach, J. H. Single-molecule DNA detection with an engineered MspA protein nanopore. Proc. Natl Acad. Sci. USA 105, 20647–20652 (2008).
Yan, S. et al. Single molecule ratcheting movement of peptides in a Mycobacterium smegmatis porin A (MspA) nanopore. Nano Lett. 21, 6703–6710 (2021).
Brinkerhoff, H., Kang, A. S. W., Liu, J., Aksimentiev, A. & Dekker, C. A number of rereads of single proteins at single–amino acid decision utilizing nanopores. Science 374, 1509–1513 (2021).
Chingarande, R. G. et al. Actual-time label-free detection of dynamic aptamer–small molecule interactions utilizing a nanopore nucleic acid conformational sensor. Proc. Natl Acad. Sci. USA 120, e2108118120 (2023).
Zhang, S. et al. A nanopore-based saccharide sensor. Angew. Chem. Int. Ed. 61, e202203769 (2022).
Wang, Y. et al. Identification of nucleoside monophosphates and their epigenetic modifications utilizing an engineered nanopore. Nat. Nanotechnol. 17, 976–983 (2022).
Tabatabaei, S. Okay. et al. Increasing the molecular alphabet of DNA-based knowledge storage techniques with neural community nanopore readout processing. Nano Lett. 22, 1905–1914 (2022).
Ali, M. et al. Label-free histamine detection with nanofluidic diodes by way of steel ion displacement mechanism. Colloids Surf. B 150, 201–208 (2017).
Chen, Z., Chen, T., Solar, X. & Hinds, B. J. Dynamic electrochemical membranes for steady affinity protein separation. Adv. Funct. Mater. 24, 4317–4323 (2014).
Wei, R., Gatterdam, V., Wieneke, R., Tampé, R. & Rant, U. Stochastic sensing of proteins with receptor-modified solid-state nanopores. Nat. Nanotechnol. 7, 257–263 (2012).
Kang, J. G., Kang, H. J., Jung, J. S., Yun, S. S. & Kim, C. H. Crystal buildings and luminescence properties of [Ln(NTA)2·H2O]3− complexes (Ln = Sm3+, Eu+3, Gd3+, Tb3+, Ho3+, and NTA = nitrilotriacetate). Bull. Korean Chem. Soc. 25, 852–858 (2004).
Kremer, C., Torres, J. & Domínguez, S. Lanthanide complexes with oda, ida, and nta: from discrete coordination compounds to supramolecular assemblies. J. Mol. Struct. 879, 130–149 (2008).
Wang, J., Zhang, X., Ling, X., Jia, W. & Li, H. Syntheses and structural willpower of nine-coordinate Okay3[NdIII(nta)2(H2O)]·6H2O and Okay3[ErIII(nta)2(H2O)]·5H2O. J. Mol. Struct. 610, 151–158 (2002).
Anderegg, G. Essential survey of stability constants of NTA complexes. Pure Appl. Chem. 54, 2693–2758 (1982).
Shannon, R. D. Revised efficient ionic radii and systematic research of interatomic distances in halides and chalcogenides. Acta Crystallogr. A 32, 751–767 (1976).
Meehan, P. R., Aris, D. R. & Willey, G. R. Structural chemistry of Sc(III): an summary. Coord. Chem. Rev. 181, 121–145 (1999).
Cheisson, T. & Schelter, E. J. Uncommon earth components: Mendeleev’s bane, fashionable marvels. Science 363, 489–493 (2019).
Xu, Z., Liu, C., Zhang, H., Ma, Y. & Lin, S. Dedication of uncommon earth components in geological samples by inductively coupled plasma atomic emission spectrometry with circulation injection liquid–liquid extraction. Anal. Sci. 19, 1625–1629 (2003).
Pedreira, W. R. et al. Dedication of hint quantities of uncommon earth components in excessive pure lanthanum oxide by sector subject inductively coupled plasma mass spectrometry (HR ICP–MS) and high-performance liquid chromatography (HPLC) methods. J. Alloys Compd. 344, 17–20 (2002).
Salahudeen, M. S. & Nishtala, P. S. An outline of pharmacodynamic modelling, ligand-binding method and its software in scientific follow. Saudi Pharm. J. 25, 165–175 (2017).
Shorkey, S. A., Du, J., Pham, R., Strieter, E. R. & Chen, M. Actual-time and label-free measurement of deubiquitinase exercise with a MspA nanopore. ChemBioChem 22, 2688–2692 (2021).
