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Adaptive deformation display technology imposes new demands on core materials and devices, as traditional mechanical and structural flexibility struggles to meet the requirements of high resolution and high reliability. Intrinsically flexible molecular materials that combine mechanical deformation properties with optoelectronic functionalities offer a unique technological pathway for adaptive deformation displays. However, current research predominantly focuses on the single-dimensional properties of room-temperature phosphorescence (RTP) materials, which limits a comprehensive understanding of their stimuli-responsive properties. In this study, we select nine molecules based on phenothiazine (PTZO) and trifluoromethyl (CF) substituted derivatives, systematically investigating the luminescence and charge transport properties under hydrostatic pressure (0-6 GPa). This work is the first to achieve a unified characterization of individual molecular performance in a three-dimensional force-light-electric model, revealing the complex coupling mechanisms among molecular structures, molecular packing modes, excited-state regulations, and stimuli-responsive properties. The nine molecules exhibit distinct pressure-induced response characteristics. In particular, PTZO-2CF derivatives demonstrate unique pressure-responsive behavior with their emission wavelength and spin-orbit coupling (SOC) strength showing monotonic changes under pressure, primarily due to the strong electron-absorbing effect and steric hindrance of the two CF groups. The radiative decay rates of all molecules remain stable under varying pressures, indicating that pressure has a weak influence on the intrinsic electronic structure and transition dipole moments. In contrast, the nonradiative decay rates decrease with increased pressures, due to the reduction of free volume and suppression of molecular vibrations, which enhances luminescence efficiency. Most of the investigated molecules exhibit hole-dominated charge transport, with both hole and electron mobilities enhanced under pressure. Interestingly, PTZO-H-3F shows electron-dominated behavior, attributed to its significantly lower electron reorganization energies, which facilitate more efficient electron transport. Notably, PTZO-H-2F exhibits pressure-induced bipolar transport at 3 GPa, highlighting its potential as a tunable platform for pressure-responsive organic emitters. Thus, the "force-light-electric" three-dimensional dynamic processes under hydrostatic pressures are revealed, providing new insights for designing high-performance intrinsically flexible molecular materials and advancing innovative adaptive deformation display technology.
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http://dx.doi.org/10.1021/acs.jpclett.5c01697 | DOI Listing |
Vestn Oftalmol
September 2025
Helmholtz National Medical Research Center of Eye Diseases, Moscow, Russia.
Unlabelled: Retinoblastoma is a malignant retinal tumor characterized by an aggressive clinical course, with frequent recurrences and the emergence of new foci even during chemotherapy.
Objective: This study investigated the subpopulation composition of peripheral blood lymphocytes in children with newly diagnosed untreated retinoblastoma.
Material And Methods: A total of 24 children (48 eyes) were examined between December 20, 2023, and September 1, 2024; retinoblastoma was diagnosed in 28 eyes.
Natl Sci Rev
September 2025
Key Laboratory of Synthetic and Natural Functional Molecule of the Ministry of Education, College of Chemistry and Materials Science, Northwest University, Xi'an 710127, China.
Precision in controlling the microenvironment of nanospaces is a potent strategy for exploring architecture‒function relationships. Herein, a face-capped tetrahedral cage, featuring Pd‒Pd-bonded vertices, with a tailored nanospace surrounded by 12 ethyl units, was facilitated to adaptively accommodate a library of guests with different sizes and shapes, including C6 cyclic hydrocarbons, adamantane derivatives, S and P. This nanocavity can achieve strong binding with cyclohexane in non-aqueous media in contrast to reported structurally similar non--functionalized cages by an increase of four orders of magnitude.
View Article and Find Full Text PDFFront Cell Dev Biol
August 2025
Department of Oncology Science, University of Oklahoma Health Sciences Center, Oklahoma City, OK, United States.
The Wnt pathway is an evolutionarily conserved signaling cascade that regulates a wide range of fundamental cellular processes, including proliferation, differentiation, polarity, migration, metabolism, and survival. Due to its central regulatory roles, Wnt signaling is critically involved in the pathophysiology of numerous human diseases. Aberrant activation or insufficient inhibition of this pathway has been causally linked to cancer, degenerative disorders, metabolic syndromes, and developmental abnormalities.
View Article and Find Full Text PDFJ Orthop Translat
November 2025
AO Research Institute Davos, Davos, Switzerland.
Background/objective: Plate failure, including bending, is a critical issue in orthopedic fracture fixation, with clinical failure rates of 3.5%-19%, burdening patients and healthcare systems. Preclinical ovine models have observed similar plate bending due to overloading.
View Article and Find Full Text PDFBrain Commun
August 2025
Department of Neurology, Xiangya Hospital, Central South University, Changsha 410008, China.
Myotonic dystrophy type 1 (DM1) is an inherited neuromuscular disorder characterized by muscle weakness, atrophy and myotonia, with multi-system involvement. Recent studies have highlighted the pathological heterogeneity within the CNS of DM1 patients, particularly significant changes in spinal transcriptome expression and alternative splicing. In this study, we conducted a comprehensive transcriptome analysis of the spinal cord in the muscle-specific DM1 mouse model and their wild-type controls across different life stages: young, adult and old age.
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