Experimental Implementation of Molecule Shift Keying for Enhanced Molecular Communication

被引:1
作者
Cali, Federico [1 ]
Barreca, Salvatore [1 ]
Li-Destri, Giovanni [1 ]
Torrisi, Alberto [1 ]
Licciardello, Antonino [1 ]
Tuccitto, Nunzio [1 ]
机构
[1] Univ Catania, Dept Chem Sci, I-95124 Catania, Italy
来源
IEEE TRANSACTIONS ON MOLECULAR BIOLOGICAL AND MULTI-SCALE COMMUNICATIONS | 2024年 / 10卷 / 01期
关键词
Fluorescence; Valves; Receivers; Microfluidics; Prototypes; Charge coupled devices; Optical fibers; Nanoparticles; fluorescence; molecule shift keying; graphene quantum dots;
D O I
10.1109/TMBMC.2024.3368759
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Molecular communication is a communication paradigm inspired by biological systems, where chemical signals are used to encode and transmit information. MoSK (Molecule Shift Keying) is proposed as a modulation technique that utilizes different types of signaling molecules to encode digital information. A prototype platform for MoSK implementation is presented, including a transmitter with infusion and selection valves, and a fluorescence-based receiver. The receiver detects and decodes fluorescence signals emitted by Graphene Quantum Dots (GQDs), which are water-soluble and fluorescent molecular messengers. The fluorescence signals of Blue-GQDs and Cyan-GQDs are acquired by the receiver, and the performance of the system is evaluated in terms of synchronization, detection threshold, and symbol recognition using Principal Component Analysis (PCA). The results demonstrate the successful detection and recognition of different symbols, even at lower concentrations. PCA proves to be an efficient method for qualitative recognition of molecular messengers in MoSK-based molecular communication systems.
引用
收藏
页码:175 / 184
页数:10
相关论文
共 19 条
  • [1] Molecular Signal Tracking and Detection Methods in Fluid Dynamic Channels
    Abbaszadeh, Mahmoud
    Atthanayake, Iresha U.
    Thomas, Peter J.
    Guo, Weisi
    [J]. IEEE TRANSACTIONS ON MOLECULAR BIOLOGICAL AND MULTI-SCALE COMMUNICATIONS, 2020, 6 (02): : 151 - 159
  • [2] Nanonetworks:: A new communication paradigm
    Akyildiz, Ian F.
    Brunetti, Fernando
    Blazquez, Cristina
    [J]. COMPUTER NETWORKS, 2008, 52 (12) : 2260 - 2279
  • [3] Salinity-Based Molecular Communication in Microfluidic Channels
    Angerbauer, Stefan
    Hamidovic, Medina
    Enzenhofer, Franz
    Bartunik, Max
    Kirchner, Jens
    Springer, Andreas
    Haselmayr, Werner
    [J]. IEEE TRANSACTIONS ON MOLECULAR BIOLOGICAL AND MULTI-SCALE COMMUNICATIONS, 2023, 9 (02): : 191 - 206
  • [4] The Development of a Biocompatible Testbed for Molecular Communication With Magnetic Nanoparticles
    Bartunik, Max
    Fischer, Georg
    Kirchner, Jens
    [J]. IEEE TRANSACTIONS ON MOLECULAR BIOLOGICAL AND MULTI-SCALE COMMUNICATIONS, 2023, 9 (02): : 179 - 190
  • [5] Colour-Specific Microfluidic Droplet Detection for Molecular Communication
    Bartunik, Max
    Fleischer, Marco
    Haselmayr, Werner
    Kirchner, Jens
    [J]. PROCEEDINGS OF THE 7TH ACM INTERNATIONAL CONFERENCE ON NANOSCALE COMPUTING AND COMMUNICATION - NANOCOM 2020, 2020,
  • [6] Bhattacharjee S., 2020, PROC 7 ACM INT C NAN, P1
  • [7] Principal component analysis
    Bro, Rasmus
    Smilde, Age K.
    [J]. ANALYTICAL METHODS, 2014, 6 (09) : 2812 - 2831
  • [8] Carbon Quantum Dots from Lemon Waste Enable Communication among Biodevices
    Cali, Federico
    Cantaro, Valentina
    Fichera, Luca
    Ruffino, Roberta
    Sfrazzetto, Giuseppe Trusso
    Li-Destri, Giovanni
    Tuccitto, Nunzio
    [J]. CHEMOSENSORS, 2021, 9 (08)
  • [9] Investigation of Multiple Fluorescent Dyes in Macroscopic Air-Based Molecular Communication
    Damrath, Martin
    Bhattacharjee, Sunasheer
    Hoeher, Peter Adam
    [J]. IEEE TRANSACTIONS ON MOLECULAR BIOLOGICAL AND MULTI-SCALE COMMUNICATIONS, 2021, 7 (02): : 78 - 82
  • [10] Eckford Andrew W., 2007, 2007 2nd Bio-Inspired Models of Network, Information and Computing Systems (BIONETICS), P313, DOI 10.1109/BIMNICS.2007.4610135