光刺激                        
                
                                
                        
                            材料科学                        
                
                                
                        
                            量子点                        
                
                                
                        
                            纳米技术                        
                
                                
                        
                            红外线的                        
                
                                
                        
                            光电子学                        
                
                                
                        
                            神经科学                        
                
                                
                        
                            光学                        
                
                                
                        
                            生物                        
                
                                
                        
                            物理                        
                
                        
                    
            作者
            
                Omer Faruk Ozelci,Hümeyra Nur Kaleli,Tarik Kaya,Gizem Yildiz,Melike Oztopal,Ebru Sarıoğlu,Ender Ödemiş,Erkan Şenses,Sedat Nizamoğlu            
         
                    
        
    
            
            标识
            
                                    DOI:10.1002/adfm.202513988
                                    
                                
                                 
         
        
                
            摘要
            
            Abstract Cardiovascular diseases are a leading global cause of mortality and bradycardia, a slow heart rate due to impaired cardiac conduction that poses significant health risks. While conventional pacemakers restore heart rate, their dependence on leads and battery lifetime remain major drawbacks. Cardiac photostimulation emerges as a transformative alternative, enabling wireless, battery‐free pacing. Here, a hydrogel‐integrated optoelectronic biointerface based on AgBiS 2 quantum dots (QDs) is presented for near‐infrared (NIR) cardiac photostimulation. The incorporation of a thin (≈0.1 µm), conductive (≈200 mS cm −1 ), and soft (390 kPa) PEDOT:PSS hydrogel enhanced ionic charge transfer by 52.8‐fold (reaching 28 µC cm −2 ) under pulsed infrared illumination compared to hydrogel‐free controls. The biointerface generated photocurrent loops between the stimulation and return electrodes that are predominantly capacitive and charge‐balanced, with minimal faradaic contribution (≈1%) and negligible thermal effects (Δ T ≈ 0.2 K). Cardiac motion analysis using a custom image‐processing algorithm confirmed modulation of beating frequency of cardiac tissue explants, ranging from bradycardic (<60 bpm) to physiological (≈120 bpm) rates. This work establishes a compelling strategy for integrating the optoelectronic properties of quantum dots with soft organic materials, paving the way for next‐generation, minimally invasive bioelectronic devices.
         
            
 
                 
                
                    
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