@misc{ZhangWangHartmannetal., author = {Zhang, Wei and Wang, Han and Hartmann, Carsten and Weber, Marcus and Sch{\"u}tte, Christof}, title = {Applications of the cross-entropy method to importance sampling and optimal control of diffusions}, series = {SIAM (Society for Industrial and Applied Mathematics)}, volume = {36}, journal = {SIAM (Society for Industrial and Applied Mathematics)}, number = {6}, issn = {1095-7197}, doi = {10.1137/14096493X}, pages = {A2654 -- A2672}, language = {en} } @misc{WangHartmannSchuette, author = {Wang, Han and Hartmann, Carsten and Sch{\"u}tte, Christof}, title = {Linear response theory and optimal control for a molecular system under non-equilibrium conditions}, series = {Molecular Physics: An International Journal at the Interface Between Chemistry and Physics}, volume = {111}, journal = {Molecular Physics: An International Journal at the Interface Between Chemistry and Physics}, number = {22-23}, issn = {1362-3028}, doi = {10.1080/00268976.2013.844370}, pages = {3555 -- 3564}, language = {en} } @misc{WangHartmannSchuetteetal., author = {Wang, Han and Hartmann, Carsten and Sch{\"u}tte, Christof and Delle Site, Luigi}, title = {Grand-Canonical-like Molecular-Dynamics Simulations by Using an Adaptive-Resolution Technique}, series = {PHYSICAL REVIEW X}, volume = {3}, journal = {PHYSICAL REVIEW X}, number = {1}, issn = {2160-3308}, doi = {10.1103/PhysRevX.3.011018}, pages = {011018}, language = {en} } @misc{AgarwalZhuHartmannetal., author = {Agarwal, Animesh and Zhu, Jinglong and Hartmann, Carsten and Wang, Han and Delle Site, Luigi}, title = {Molecular dynamics in a Grand Ensemble: Bergmann-Lebowitz model and adaptive resolution simulation}, series = {New Journal of Physics}, volume = {17}, journal = {New Journal of Physics}, issn = {1367-2630}, doi = {10.1088/1367-2630/17/8/083042}, pages = {18}, language = {en} } @misc{HanXuWangetal., author = {Han, Liuliu and Xu, Xiandong and Wang, Li and Pyczak, Florian and Zhou, Rui and Liu, Yong}, title = {A eutectic high-entropy alloy with good high-temperature strength-plasticity balance}, series = {Materials Research Letters}, volume = {7}, journal = {Materials Research Letters}, number = {11}, issn = {2166-3831}, pages = {460 -- 466}, language = {en} } @misc{LiLokNgoetal., author = {Li, Siyang and Lok, Tow-Jie and Ngo, Shi-Han and Xue, Yaoting and Miao, Zhikun and Feng, Tao and Wang, Lei and Wong, Jie-Wei and Low, Jiatee and Lim, Kai-Yi and Woon, Min-Rou and Neffe, Axel T. and Wong, Tuck-Whye and Li, Tiefeng and Yang, Xuxu and Yang, Wei}, title = {A water-recyclable, robust, and self-healing sugar-based supramolecular network enabled by Maillard-analogous initialization of polymerization}, series = {Materials horizons}, volume = {13}, journal = {Materials horizons}, number = {1}, publisher = {Royal Society of Chemistry (RSC)}, address = {Cambridge}, issn = {2051-6347}, doi = {10.1039/D5MH01828E}, pages = {219 -- 232}, abstract = {Crosslinked functional polymers exhibit exceptional mechanical and chemical properties critical for applications spanning biomedical engineering, advanced adhesives, and self-healing materials. However, challenges in recycling, either due to irreversible crosslinks or, in the case of covalent adaptable networks (CANs), limited solid-state plasticity that typically requires catalysts, significantly restrict sustainability. To address these limitations, we present a novel water-mediated polymerization strategy inspired by the radical-generating mechanism of the Maillard reaction, utilizing maltose as both an initiator and a functional side group in a simple, catalyst-free, aqueous reaction with acrylamide (AAm). This mild, one-pot reaction occurs below 100 °C, forming adaptively functionalized supramolecular networks (AFSNs) that form supramolecular networks through hydrogen bonding and display dynamic imine linkages to the maltose side chains supporting self-healing and re-shaping. These elastomers are characterized by impressive mechanical strength (up to 5 MPa tensile strength), high elongation (up to 1000\%), notable fracture energy (36 kJ m-2), robust adhesive performance (up to 4.8 MPa), and rapid self-healing capability at room temperature. Crucially, the elastomer's supramolecular network can be fully and repeatedly dissolved and reprocessed using only water, preserving mechanical integrity without chemical degradation. This sustainable approach provides a practical solution for synthesizing and recycling high-performance crosslinked materials while eliminating environmental hazards, guiding the future development of green polymer chemistry and functional material design.}, language = {en} }