The Experts below are selected from a list of 2832 Experts worldwide ranked by ideXlab platform

Changsoon Choi - One of the best experts on this subject based on the ideXlab platform.

  • human eye inspired soft optoelectronic device using high density mos2 graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Seunghae Kwon, Noo Li Jeon, Young Min Song, Nanshu Lu
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina. Soft and flexible optoelectronic devices may provide effective routes toward Retinal Implants for enhanced visual functions. Here, the authors fabricate a curved array of flexible MoS2-graphene photodetectors and demonstrate its potential application as ophthalmic imaging element in mouse models.

  • Human eye-inspired soft optoelectronic device using high-density MoS2-graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Xiaoliang Qin, Gil Ju Lee, Jaemin Kim, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Min Sung Kim, Siyi Liu, Kyoung Won Cho
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina.

Nanshu Lu - One of the best experts on this subject based on the ideXlab platform.

  • human eye inspired soft optoelectronic device using high density mos2 graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Seunghae Kwon, Noo Li Jeon, Young Min Song, Nanshu Lu
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina. Soft and flexible optoelectronic devices may provide effective routes toward Retinal Implants for enhanced visual functions. Here, the authors fabricate a curved array of flexible MoS2-graphene photodetectors and demonstrate its potential application as ophthalmic imaging element in mouse models.

Kyoung Won Cho - One of the best experts on this subject based on the ideXlab platform.

  • Human eye-inspired soft optoelectronic device using high-density MoS2-graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Xiaoliang Qin, Gil Ju Lee, Jaemin Kim, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Min Sung Kim, Siyi Liu, Kyoung Won Cho
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina.

Changkyun Im - One of the best experts on this subject based on the ideXlab platform.

  • human eye inspired soft optoelectronic device using high density mos2 graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Seunghae Kwon, Noo Li Jeon, Young Min Song, Nanshu Lu
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina. Soft and flexible optoelectronic devices may provide effective routes toward Retinal Implants for enhanced visual functions. Here, the authors fabricate a curved array of flexible MoS2-graphene photodetectors and demonstrate its potential application as ophthalmic imaging element in mouse models.

  • Human eye-inspired soft optoelectronic device using high-density MoS2-graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Xiaoliang Qin, Gil Ju Lee, Jaemin Kim, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Min Sung Kim, Siyi Liu, Kyoung Won Cho
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina.

Moon Kee Choi - One of the best experts on this subject based on the ideXlab platform.

  • human eye inspired soft optoelectronic device using high density mos2 graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Seunghae Kwon, Noo Li Jeon, Young Min Song, Nanshu Lu
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina. Soft and flexible optoelectronic devices may provide effective routes toward Retinal Implants for enhanced visual functions. Here, the authors fabricate a curved array of flexible MoS2-graphene photodetectors and demonstrate its potential application as ophthalmic imaging element in mouse models.

  • Human eye-inspired soft optoelectronic device using high-density MoS2-graphene curved image sensor array
    Nature Communications, 2017
    Co-Authors: Changsoon Choi, Xiaoliang Qin, Gil Ju Lee, Jaemin Kim, Changkyun Im, Moon Kee Choi, Ok Kyu Park, Min Sung Kim, Siyi Liu, Kyoung Won Cho
    Abstract:

    Soft bioelectronic devices provide new opportunities for next-generation Implantable devices owing to their soft mechanical nature that leads to minimal tissue damages and immune responses. However, a soft form of the Implantable optoelectronic device for optical sensing and Retinal stimulation has not been developed yet because of the bulkiness and rigidity of conventional imaging modules and their composing materials. Here, we describe a high-density and hemispherically curved image sensor array that leverages the atomically thin MoS2-graphene heterostructure and strain-releasing device designs. The hemispherically curved image sensor array exhibits infrared blindness and successfully acquires pixelated optical signals. We corroborate the validity of the proposed soft materials and ultrathin device designs through theoretical modeling and finite element analysis. Then, we propose the ultrathin hemispherically curved image sensor array as a promising imaging element in the soft Retinal Implant. The CurvIS array is applied as a human eye-inspired soft Implantable optoelectronic device that can detect optical signals and apply programmed electrical stimulation to optic nerves with minimum mechanical side effects to the retina.