@article{14321,
  abstract     = {We demonstrate the possibility of a coupling between the magnetization direction of a ferromagnet and the tilting angle of adsorbed achiral molecules. To illustrate the mechanism of the coupling, we analyze a minimal Stoner model that includes Rashba spin–orbit coupling due to the electric field on the surface of the ferromagnet. The proposed mechanism allows us to study magnetic anisotropy of the system with an extended Stoner–Wohlfarth model and argue that adsorbed achiral molecules can change magnetocrystalline anisotropy of the substrate. Our research aims to motivate further experimental studies of the current-free chirality induced spin selectivity effect involving both enantiomers.},
  author       = {Al Hyder, Ragheed and Cappellaro, Alberto and Lemeshko, Mikhail and Volosniev, Artem},
  issn         = {1089-7690},
  journal      = {The Journal of Chemical Physics},
  keywords     = {Physical and Theoretical Chemistry, General Physics and Astronomy},
  number       = {10},
  publisher    = {AIP Publishing},
  title        = {{Achiral dipoles on a ferromagnet can affect its magnetization direction}},
  doi          = {10.1063/5.0165806},
  volume       = {159},
  year         = {2023},
}

@article{14701,
  author       = {Archer, Lynden A. and Bruce, Peter G. and Calvo, Ernesto J. and Dewar, Daniel and Ellison, James H. J. and Freunberger, Stefan Alexander and Gao, Xiangwen and Hardwick, Laurence J. and Horwitz, Gabriela and Janek, Jürgen and Johnson, Lee R. and Jordan, Jack W. and Matsuda, Shoichi and Menkin, Svetlana and Mondal, Soumyadip and Qiu, Qianyuan and Samarakoon, Thukshan and Temprano, Israel and Uosaki, Kohei and Vailaya, Ganesh and Wachsman, Eric D. and Wu, Yiying and Ye, Shen},
  issn         = {1364-5498},
  journal      = {Faraday Discussions},
  keywords     = {Physical and Theoretical Chemistry},
  publisher    = {Royal Society of Chemistry},
  title        = {{Towards practical metal–oxygen batteries: General discussion}},
  doi          = {10.1039/d3fd90062b},
  year         = {2023},
}

@article{14702,
  author       = {Attard, Gary A. and Calvo, Ernesto J. and Curtiss, Larry A. and Dewar, Daniel and Ellison, James H. J. and Gao, Xiangwen and Grey, Clare P. and Hardwick, Laurence J. and Horwitz, Gabriela and Janek, Juergen and Johnson, Lee R. and Jordan, Jack W. and Matsuda, Shoichi and Mondal, Soumyadip and Neale, Alex R. and Ortiz-Vitoriano, Nagore and Temprano, Israel and Vailaya, Ganesh and Wachsman, Eric D. and Wang, Hsien-Hau and Wu, Yiying and Ye, Shen},
  issn         = {1364-5498},
  journal      = {Faraday Discussions},
  keywords     = {Physical and Theoretical Chemistry},
  publisher    = {Royal Society of Chemistry},
  title        = {{Materials for stable metal–oxygen battery cathodes: general discussion}},
  doi          = {10.1039/d3fd90059b},
  year         = {2023},
}

@article{14776,
  abstract     = {Soluble chaperones residing in the endoplasmic reticulum (ER) play vitally important roles in folding and quality control of newly synthesized proteins that transiently pass through the ER en route to their final destinations. These soluble residents of the ER are themselves endowed with an ER retrieval signal that enables the cell to bring the escaped residents back from the Golgi. Here, by using purified proteins, we showed that Nicotiana tabacum phytaspase, a plant aspartate-specific protease, introduces two breaks at the C-terminus of the N. tabacum ER resident calreticulin-3. These cleavages resulted in removal of either a dipeptide or a hexapeptide from the C-terminus of calreticulin-3 encompassing part or all of the ER retrieval signal. Consistently, expression of the calreticulin-3 derivative mimicking the phytaspase cleavage product in Nicotiana benthamiana cells demonstrated loss of the ER accumulation of the protein. Notably, upon its escape from the ER, calreticulin-3 was further processed by an unknown protease(s) to generate the free N-terminal (N) domain of calreticulin-3, which was ultimately secreted into the apoplast. Our study thus identified a specific proteolytic enzyme capable of precise detachment of the ER retrieval signal from a plant ER resident protein, with implications for the further fate of the escaped resident.},
  author       = {Teplova, Anastasiia and Pigidanov, Artemii A. and Serebryakova, Marina V. and Golyshev, Sergei A. and Galiullina, Raisa A. and Chichkova, Nina V. and Vartapetian, Andrey B.},
  issn         = {1422-0067},
  journal      = {International Journal of Molecular Sciences},
  keywords     = {Inorganic Chemistry, Organic Chemistry, Physical and Theoretical Chemistry, Computer Science Applications, Spectroscopy, Molecular Biology, General Medicine, Catalysis},
  number       = {22},
  publisher    = {MDPI},
  title        = {{Phytaspase Is capable of detaching the endoplasmic reticulum retrieval signal from tobacco calreticulin-3}},
  doi          = {10.3390/ijms242216527},
  volume       = {24},
  year         = {2023},
}

@article{14831,
  abstract     = {Catalysis, the acceleration of product formation by a substance that is left unchanged, typically results from multiple elementary processes, including diffusion of the reactants toward the catalyst, chemical steps, and release of the products. While efforts to design catalysts are often focused on accelerating the chemical reaction on the catalyst, catalysis is a global property of the catalytic cycle that involves all processes. These are controlled by both intrinsic parameters such as the composition and shape of the catalyst and extrinsic parameters such as the concentration of the chemical species at play. We examine here the conditions that catalysis imposes on the different steps of a reaction cycle and the respective role of intrinsic and extrinsic parameters of the system on the emergence of catalysis by using an approach based on first-passage times. We illustrate this approach for various decompositions of a catalytic cycle into elementary steps, including non-Markovian decompositions, which are useful when the presence and nature of intermediate states are a priori unknown. Our examples cover different types of reactions and clarify the constraints on elementary steps and the impact of species concentrations on catalysis.},
  author       = {Sakref, Yann and Muñoz Basagoiti, Maitane and Zeravcic, Zorana and Rivoire, Olivier},
  issn         = {1520-5207},
  journal      = {The Journal of Physical Chemistry B},
  keywords     = {Materials Chemistry, Surfaces, Coatings and Films, Physical and Theoretical Chemistry},
  number       = {51},
  pages        = {10950--10959},
  publisher    = {American Chemical Society},
  title        = {{On kinetic constraints that catalysis imposes on elementary processes}},
  doi          = {10.1021/acs.jpcb.3c04627},
  volume       = {127},
  year         = {2023},
}

@article{13251,
  abstract     = {A rotating organic cation and a dynamically disordered soft inorganic cage are the hallmark features of organic-inorganic lead-halide perovskites. Understanding the interplay between these two subsystems is a challenging problem, but it is this coupling that is widely conjectured to be responsible for the unique behavior of photocarriers in these materials. In this work, we use the fact that the polarizability of the organic cation strongly depends on the ambient electrostatic environment to put the molecule forward as a sensitive probe of the local crystal fields inside the lattice cell. We measure the average polarizability of the C/N–H bond stretching mode by means of infrared spectroscopy, which allows us to deduce the character of the motion of the cation molecule, find the magnitude of the local crystal field, and place an estimate on the strength of the hydrogen bond between the hydrogen and halide atoms. Our results pave the way for understanding electric fields in lead-halide perovskites using infrared bond spectroscopy.},
  author       = {Wei, Yujing and Volosniev, Artem and Lorenc, Dusan and Zhumekenov, Ayan A. and Bakr, Osman M. and Lemeshko, Mikhail and Alpichshev, Zhanybek},
  issn         = {1948-7185},
  journal      = {The Journal of Physical Chemistry Letters},
  keywords     = {General Materials Science, Physical and Theoretical Chemistry},
  number       = {27},
  pages        = {6309--6314},
  publisher    = {American Chemical Society},
  title        = {{Bond polarizability as a probe of local crystal fields in hybrid lead-halide perovskites}},
  doi          = {10.1021/acs.jpclett.3c01158},
  volume       = {14},
  year         = {2023},
}

@article{12921,
  abstract     = {Visible-light photocatalysis provides numerous useful methodologies for synthetic organic chemistry. However, the mechanisms of these reactions are often not fully understood. Common mechanistic experiments mainly aim to characterize excited state properties of photocatalysts and their interaction with other species. Recently, in situ reaction monitoring using dedicated techniques was shown to be well-suited for the identification of intermediates and to obtain kinetic insights, thereby providing more holistic pictures of the reactions of interest. This minireview surveys these technologies and discusses selected examples where reaction monitoring was used to elucidate the mechanism of photocatalytic reactions.},
  author       = {Madani, Amiera and Pieber, Bartholomäus},
  issn         = {1867-3899},
  journal      = {ChemCatChem},
  keywords     = {Inorganic Chemistry, Organic Chemistry, Physical and Theoretical Chemistry, Catalysis},
  number       = {7},
  publisher    = {Wiley},
  title        = {{In situ reaction monitoring in photocatalytic organic synthesis}},
  doi          = {10.1002/cctc.202201583},
  volume       = {15},
  year         = {2023},
}

@article{13044,
  abstract     = {Singlet oxygen (1O2) formation is now recognised as a key aspect of non-aqueous oxygen redox chemistry. For identifying 1O2, chemical trapping via 9,10-dimethylanthracene (DMA) to form the endoperoxide (DMA-O2) has become the mainstay method due to its sensitivity, selectivity, and ease of use. While DMA has been shown to be selective for 1O2, rather than forming DMA-O2 with a wide variety of potentially reactive O-containing species, false positives might hypothetically be obtained in the presence of previously overlooked species. Here, we first give unequivocal direct spectroscopic proof by the 1O2-specific near infrared (NIR) emission at 1270 nm for the previously proposed 1O2 formation pathways, which centre around superoxide disproportionation. We then show that peroxocarbonates, common intermediates in metal-O2 and metal carbonate electrochemistry, do not produce false-positive DMA-O2. Moreover, we identify a previously unreported 1O2-forming pathway through the reaction of CO2 with superoxide. Overall, we give unequivocal proof for 1O2 formation in non-aqueous oxygen redox and show that chemical trapping with DMA is a reliable method to assess 1O2 formation.},
  author       = {Mondal, Soumyadip and Jethwa, Rajesh B and Pant, Bhargavi and Hauschild, Robert and Freunberger, Stefan Alexander},
  issn         = {1364-5498},
  journal      = {Faraday Discussions},
  keywords     = {Physical and Theoretical Chemistry},
  publisher    = {Royal Society of Chemistry},
  title        = {{Singlet oxygen in non-aqueous oxygen redox: Direct spectroscopic evidence for formation pathways and reliability of chemical probes}},
  doi          = {10.1039/d3fd00088e},
  year         = {2023},
}

@article{11400,
  abstract     = {By varying the concentration of molecules in the cytoplasm or on the membrane, cells can induce the formation of condensates and liquid droplets, similar to phase separation. Their thermodynamics, much studied, depends on the mutual interactions between microscopic constituents. Here, we focus on the kinetics and size control of 2D clusters, forming on membranes. Using molecular dynamics of patchy colloids, we model a system of two species of proteins, giving origin to specific heterotypic bonds. We find that concentrations, together with valence and bond strength, control both the size and the growth time rate of the clusters. In particular, if one species is in large excess, it gradually saturates the binding sites of the other species; the system then becomes kinetically arrested and cluster coarsening slows down or stops, thus yielding effective size selection. This phenomenology is observed both in solid and fluid clusters, which feature additional generic homotypic interactions and are reminiscent of the ones observed on biological membranes.},
  author       = {Palaia, Ivan and Šarić, Anđela},
  issn         = {1089-7690},
  journal      = {The Journal of Chemical Physics},
  keywords     = {Physical and Theoretical Chemistry, General Physics and Astronomy},
  number       = {19},
  publisher    = {AIP Publishing},
  title        = {{Controlling cluster size in 2D phase-separating binary mixtures with specific interactions}},
  doi          = {10.1063/5.0087769},
  volume       = {156},
  year         = {2022},
}

@article{12249,
  abstract     = {The chemical potential of a component in a solution is defined as the free energy change as the amount of that component changes. Computing this fundamental thermodynamic property from atomistic simulations is notoriously difficult because of the convergence issues involved in free energy methods and finite size effects. This Communication presents the so-called S0 method, which can be used to obtain chemical potentials from static structure factors computed from equilibrium molecular dynamics simulations under the isothermal–isobaric ensemble. This new method is demonstrated on the systems of binary Lennard-Jones particles, urea–water mixtures, a NaCl aqueous solution, and a high-pressure carbon–hydrogen mixture. },
  author       = {Cheng, Bingqing},
  issn         = {1089-7690},
  journal      = {The Journal of Chemical Physics},
  keywords     = {Physical and Theoretical Chemistry, General Physics and Astronomy},
  number       = {12},
  publisher    = {AIP Publishing},
  title        = {{Computing chemical potentials of solutions from structure factors}},
  doi          = {10.1063/5.0107059},
  volume       = {157},
  year         = {2022},
}

@article{12938,
  abstract     = {In this work, a feed-forward artificial neural network (FF-ANN) design capable of locating eigensolutions to Schrödinger's equation via self-supervised learning is outlined. Based on the input potential determining the nature of the quantum problem, the presented FF-ANN strategy identifies valid solutions solely by minimizing Schrödinger's equation encoded in a suitably designed global loss function. In addition to benchmark calculations of prototype systems with known analytical solutions, the outlined methodology was also applied to experimentally accessible quantum systems, such as the vibrational states of molecular hydrogen H2 and its isotopologues HD and D2 as well as the torsional tunnel splitting in the phenol molecule. It is shown that in conjunction with the use of SIREN activation functions a high accuracy in the energy eigenvalues and wavefunctions is achieved without the requirement to adjust the implementation to the vastly different range of input potentials, thereby even considering problems under periodic boundary conditions.},
  author       = {Gamper, Jakob and Kluibenschedl, Florian and Weiss, Alexander K. H. and Hofer, Thomas S.},
  issn         = {1463-9076},
  journal      = {Physical Chemistry Chemical Physics},
  keywords     = {Physical and Theoretical Chemistry, General Physics and Astronomy},
  number       = {41},
  pages        = {25191--25202},
  publisher    = {Royal Society of Chemistry},
  title        = {{From vibrational spectroscopy and quantum tunnelling to periodic band structures – a self-supervised, all-purpose neural network approach to general quantum problems}},
  doi          = {10.1039/d2cp03921d},
  volume       = {24},
  year         = {2022},
}

@article{8587,
  abstract     = {Inspired by the possibility to experimentally manipulate and enhance chemical reactivity in helium nanodroplets, we investigate the effective interaction and the resulting correlations between two diatomic molecules immersed in a bath of bosons. By analogy with the bipolaron, we introduce the biangulon quasiparticle describing two rotating molecules that align with respect to each other due to the effective attractive interaction mediated by the excitations of the bath. We study this system in different parameter regimes and apply several theoretical approaches to describe its properties. Using a Born–Oppenheimer approximation, we investigate the dependence of the effective intermolecular interaction on the rotational state of the two molecules. In the strong-coupling regime, a product-state ansatz shows that the molecules tend to have a strong alignment in the ground state. To investigate the system in the weak-coupling regime, we apply a one-phonon excitation variational ansatz, which allows us to access the energy spectrum. In comparison to the angulon quasiparticle, the biangulon shows shifted angulon instabilities and an additional spectral instability, where resonant angular momentum transfer between the molecules and the bath takes place. These features are proposed as an experimentally observable signature for the formation of the biangulon quasiparticle. Finally, by using products of single angulon and bare impurity wave functions as basis states, we introduce a diagonalization scheme that allows us to describe the transition from two separated angulons to a biangulon as a function of the distance between the two molecules.},
  author       = {Li, Xiang and Yakaboylu, Enderalp and Bighin, Giacomo and Schmidt, Richard and Lemeshko, Mikhail and Deuchert, Andreas},
  issn         = {1089-7690},
  journal      = {The Journal of Chemical Physics},
  keywords     = {Physical and Theoretical Chemistry, General Physics and Astronomy},
  number       = {16},
  publisher    = {AIP Publishing},
  title        = {{Intermolecular forces and correlations mediated by a phonon bath}},
  doi          = {10.1063/1.5144759},
  volume       = {152},
  year         = {2020},
}

@article{12939,
  abstract     = {Linear tetrapyrroles, called phyllobilins, are obtained as major catabolites upon chlorophyll degradation. Primarily, colorless phylloleucobilins featuring four deconjugated pyrrole units were identified. Their yellow counterparts, phylloxanthobilins, were discovered more recently. Although the two catabolites differ only by one double bond, physicochemical properties are very distinct. Moreover, the presence of the double bond seems to enhance physiologically relevant bioactivities: in contrast to phylloleucobilin, we identified a potent anti-proliferative activity for a phylloxanthobilin, and show that this natural product induces apoptotic cell death and a cell cycle arrest in cancer cells. Interestingly, upon modifying inactive phylloleucobilin by esterification, an anti-proliferative activity can be observed that increases with the chain lengths of the alkyl esters. We provide first evidence for anti-cancer activity of phyllobilins, report a novel plant source for a phylloxanthobilin, and by using paper spray MS, show that these bioactive yellow chlorophyll catabolites are more prevalent in Nature than previously assumed.},
  author       = {Karg, Cornelia A. and Wang, Pengyu and Kluibenschedl, Florian and Müller, Thomas and Allmendinger, Lars and Vollmar, Angelika M. and Moser, Simone},
  issn         = {1434-193X},
  journal      = {European Journal of Organic Chemistry},
  keywords     = {Organic Chemistry, Physical and Theoretical Chemistry},
  number       = {29},
  pages        = {4499--4509},
  publisher    = {Wiley},
  title        = {{Phylloxanthobilins are abundant linear tetrapyrroles from chlorophyll breakdown with activities against cancer cells}},
  doi          = {10.1002/ejoc.202000692},
  volume       = {2020},
  year         = {2020},
}

@article{8411,
  abstract     = {Studying protein dynamics on microsecond‐to‐millisecond (μs‐ms) time scales can provide important insight into protein function. In magic‐angle‐spinning (MAS) NMR, μs dynamics can be visualized by R1p rotating‐frame relaxation dispersion experiments in different regimes of radio‐frequency field strengths: at low RF field strength, isotropic‐chemical‐shift fluctuation leads to “Bloch‐McConnell‐type” relaxation dispersion, while when the RF field approaches rotary resonance conditions bond angle fluctuations manifest as increased R1p rate constants (“Near‐Rotary‐Resonance Relaxation Dispersion”, NERRD). Here we explore the joint analysis of both regimes to gain comprehensive insight into motion in terms of geometric amplitudes, chemical‐shift changes, populations and exchange kinetics. We use a numerical simulation procedure to illustrate these effects and the potential of extracting exchange parameters, and apply the methodology to the study of a previously described conformational exchange process in microcrystalline ubiquitin.},
  author       = {Marion, Dominique and Gauto, Diego F. and Ayala, Isabel and Giandoreggio-Barranco, Karine and Schanda, Paul},
  issn         = {1439-4235},
  journal      = {ChemPhysChem},
  keywords     = {Physical and Theoretical Chemistry, Atomic and Molecular Physics, and Optics},
  number       = {2},
  pages        = {276--284},
  publisher    = {Wiley},
  title        = {{Microsecond protein dynamics from combined Bloch-McConnell and Near-Rotary-Resonance R1p relaxation-dispersion MAS NMR}},
  doi          = {10.1002/cphc.201800935},
  volume       = {20},
  year         = {2019},
}

@article{8412,
  abstract     = {Microsecond to millisecond timescale backbone dynamics of the amyloid core residues in Y145Stop human prion protein (PrP) fibrils were investigated by using 15N rotating frame (R1ρ) relaxation dispersion solid‐state nuclear magnetic resonance spectroscopy over a wide range of spin‐lock fields. Numerical simulations enabled the experimental relaxation dispersion profiles for most of the fibril core residues to be modelled by using a two‐state exchange process with a common exchange rate of 1000 s−1, corresponding to protein backbone motion on the timescale of 1 ms, and an excited‐state population of 2 %. We also found that the relaxation dispersion profiles for several amino acids positioned near the edges of the most structured regions of the amyloid core were better modelled by assuming somewhat higher excited‐state populations (∼5–15 %) and faster exchange rate constants, corresponding to protein backbone motions on the timescale of ∼100–300 μs. The slow backbone dynamics of the core residues were evaluated in the context of the structural model of human Y145Stop PrP amyloid.},
  author       = {Shannon, Matthew D. and Theint, Theint and Mukhopadhyay, Dwaipayan and Surewicz, Krystyna and Surewicz, Witold K. and Marion, Dominique and Schanda, Paul and Jaroniec, Christopher P.},
  issn         = {1439-4235},
  journal      = {ChemPhysChem},
  keywords     = {Physical and Theoretical Chemistry, Atomic and Molecular Physics, and Optics},
  number       = {2},
  pages        = {311--317},
  publisher    = {Wiley},
  title        = {{Conformational dynamics in the core of human Y145Stop prion protein amyloid probed by relaxation dispersion NMR}},
  doi          = {10.1002/cphc.201800779},
  volume       = {20},
  year         = {2019},
}

@article{10361,
  abstract     = {Understanding how normally soluble peptides and proteins aggregate to form amyloid fibrils is central to many areas of modern biomolecular science, ranging from the development of functional biomaterials to the design of rational therapeutic strategies against increasingly prevalent medical conditions such as Alzheimer's and Parkinson's diseases. As such, there is a great need to develop models to mechanistically describe how amyloid fibrils are formed from precursor peptides and proteins. Here we review and discuss how ideas and concepts from chemical reaction kinetics can help to achieve this objective. In particular, we show how a combination of theory, experiments, and computer simulations, based on chemical kinetics, provides a general formalism for uncovering, at the molecular level, the mechanistic steps that underlie the phenomenon of amyloid fibril formation.},
  author       = {Michaels, Thomas C.T. and Šarić, Anđela and Habchi, Johnny and Chia, Sean and Meisl, Georg and Vendruscolo, Michele and Dobson, Christopher M. and Knowles, Tuomas P.J.},
  issn         = {1545-1593},
  journal      = {Annual Review of Physical Chemistry},
  keywords     = {physical and theoretical chemistry},
  number       = {1},
  pages        = {273--298},
  publisher    = {Annual Reviews},
  title        = {{Chemical kinetics for bridging molecular mechanisms and macroscopic measurements of amyloid fibril formation}},
  doi          = {10.1146/annurev-physchem-050317-021322},
  volume       = {69},
  year         = {2018},
}

@article{8446,
  abstract     = {Solid‐state NMR spectroscopy can provide insight into protein structure and dynamics at the atomic level without inherent protein size limitations. However, a major hurdle to studying large proteins by solid‐state NMR spectroscopy is related to spectral complexity and resonance overlap, which increase with molecular weight and severely hamper the assignment process. Here the use of two sets of experiments is shown to expand the tool kit of 1H‐detected assignment approaches, which correlate a given amide pair either to the two adjacent CO–CA pairs (4D hCOCANH/hCOCAcoNH), or to the amide 1H of the neighboring residue (3D HcocaNH/HcacoNH, which can be extended to 5D). The experiments are based on efficient coherence transfers between backbone atoms using INEPT transfers between carbons and cross‐polarization for heteronuclear transfers. The utility of these experiments is exemplified with application to assemblies of deuterated, fully amide‐protonated proteins from approximately 20 to 60 kDa monomer, at magic‐angle spinning (MAS) frequencies from approximately 40 to 55 kHz. These experiments will also be applicable to protonated proteins at higher MAS frequencies. The resonance assignment of a domain within the 50.4 kDa bacteriophage T5 tube protein pb6 is reported, and this is compared to NMR assignments of the isolated domain in solution. This comparison reveals contacts of this domain to the core of the polymeric tail tube assembly.},
  author       = {Fraga, Hugo and Arnaud, Charles‐Adrien and Gauto, Diego F. and Audin, Maxime and Kurauskas, Vilius and Macek, Pavel and Krichel, Carsten and Guan, Jia‐Ying and Boisbouvier, Jerome and Sprangers, Remco and Breyton, Cécile and Schanda, Paul},
  issn         = {1439-4235},
  journal      = {ChemPhysChem},
  keywords     = {Physical and Theoretical Chemistry, Atomic and Molecular Physics, and Optics},
  number       = {19},
  pages        = {2697--2703},
  publisher    = {Wiley},
  title        = {{Solid‐state NMR H–N–(C)–H and H–N–C–C 3D/4D correlation experiments for resonance assignment of large proteins}},
  doi          = {10.1002/cphc.201700572},
  volume       = {18},
  year         = {2017},
}

@article{13383,
  abstract     = {Two novel donor–acceptor Stenhouse adducts (DASAs) featuring the catechol moiety were synthesized and characterized. Both compounds bind strongly to the surfaces of magnetite nanoparticles. An adrenaline-derived DASA renders the particles insoluble in all common solvents, likely because of poor solvation of the zwitterionic isomer generated on the nanoparticle surfaces. Well-soluble nanoparticles were successfully obtained using dopamine-derived DASA equipped with a long alkyl chain. Upon its attachment to nanoparticles, this DASA undergoes an irreversible decoloration reaction owing to the formation of the zwitterionic form. The reaction follows first-order kinetics and proceeds more rapidly on large nanoparticles. Interestingly, decoloration can be suppressed in the presence of free DASA molecules in solution or at high nanoparticle concentrations.},
  author       = {Ahrens, Johannes and Bian, Tong and Vexler, Tom and Klajn, Rafal},
  issn         = {2367-0932},
  journal      = {ChemPhotoChem},
  keywords     = {Organic Chemistry, Physical and Theoretical Chemistry, Analytical Chemistry},
  number       = {5},
  pages        = {230--236},
  publisher    = {Wiley},
  title        = {{Irreversible bleaching of donor-acceptor stenhouse adducts on the surfaces of magnetite nanoparticles}},
  doi          = {10.1002/cptc.201700009},
  volume       = {1},
  year         = {2017},
}

@article{14006,
  abstract     = {We present a theoretical formalism for the calculation of attosecond delays in molecular photoionization. It is shown how delays relevant to one-photon-ionization, also known as Eisenbud-Wigner-Smith delays, can be obtained from the complex dipole matrix elements provided by molecular quantum scattering theory. These results are used to derive formulae for the delays measured by two-photon attosecond interferometry based on an attosecond pulse train and a dressing femtosecond infrared pulse. These effective delays are first expressed in the molecular frame where maximal information about the molecular photoionization dynamics is available. The effects of averaging over the emission direction of the electron and the molecular orientation are introduced analytically. We illustrate this general formalism for the case of two polyatomic molecules. N2O serves as an example of a polar linear molecule characterized by complex photoionization dynamics resulting from the presence of molecular shape resonances. H2O illustrates the case of a non-linear molecule with comparably simple photoionization dynamics resulting from a flat continuum. Our theory establishes the foundation for interpreting measurements of the photoionization dynamics of all molecules by attosecond metrology.},
  author       = {Baykusheva, Denitsa Rangelova and Wörner, Hans Jakob},
  issn         = {1089-7690},
  journal      = {The Journal of Chemical Physics},
  keywords     = {Physical and Theoretical Chemistry, General Physics and Astronomy},
  number       = {12},
  publisher    = {AIP Publishing},
  title        = {{Theory of attosecond delays in molecular photoionization}},
  doi          = {10.1063/1.4977933},
  volume       = {146},
  year         = {2017},
}

@article{8453,
  abstract     = {Transverse relaxation rate measurements in magic-angle spinning solid-state nuclear magnetic resonance provide information about molecular motions occurring on nanosecond-to-millisecond (ns–ms) time scales. The measurement of heteronuclear (13C, 15N) relaxation rate constants in the presence of a spin-lock radiofrequency field (R1ρ relaxation) provides access to such motions, and an increasing number of studies involving R1ρ relaxation in proteins have been reported. However, two factors that influence the observed relaxation rate constants have so far been neglected, namely, (1) the role of CSA/dipolar cross-correlated relaxation (CCR) and (2) the impact of fast proton spin flips (i.e., proton spin diffusion and relaxation). We show that CSA/D CCR in R1ρ experiments is measurable and that the CCR rate constant depends on ns–ms motions; it can thus provide insight into dynamics. We find that proton spin diffusion attenuates this CCR due to its decoupling effect on the doublet components. For measurements of dynamics, the use of R1ρ rate constants has practical advantages over the use of CCR rates, and this article reveals factors that have so far been disregarded and which are important for accurate measurements and interpretation.},
  author       = {Kurauskas, Vilius and Weber, Emmanuelle and Hessel, Audrey and Ayala, Isabel and Marion, Dominique and Schanda, Paul},
  issn         = {1520-6106},
  journal      = {The Journal of Physical Chemistry B},
  keywords     = {Physical and Theoretical Chemistry, Materials Chemistry, Surfaces, Coatings and Films},
  number       = {34},
  pages        = {8905--8913},
  publisher    = {American Chemical Society},
  title        = {{Cross-correlated relaxation of dipolar coupling and chemical-shift anisotropy in magic-angle spinning R1ρ NMR measurements: Application to protein backbone dynamics measurements}},
  doi          = {10.1021/acs.jpcb.6b06129},
  volume       = {120},
  year         = {2016},
}

