Uploaded January 2024 | Updated September 2026, 2 days ago
Harnessing and Utilizing Plant's Biophotonic Emission
Igor Nazarov
Introduction: The aim of this research was to experimentally validate a low-intensity, light-sensitive set of several apparatuses for the analysis, recording, and storage of biophotonic flux emitted by various plants in an electronic format. The biophotonic flux profiles that were recorded as a spectral diagram were combined as an electronic file and applied to other plants through an LED illumination system modulated by electronic signals derived from the file that had been created. The tested plants were analyzed for changes in mass gain and chemical composition.
After the biophotonic flux was electronically recorded and transformed into a frequency-modulated current, it was applied to LED lighting devices, creating emission modulations. This modulated LED emission was used to illuminate water through special filters and caused the latter to acquire new qualities, a process which was named “water structuring.” Water structuring can lead to changes in the vibrational spectrum of water that result in the molecular structure of aquatic solutions attaining a higher order of organization and changing the way the structured water interacts with living organisms.
The results of these experiments demonstrate that biophotonic flux patterns transported to the test plants through water structuring, as compared to the control, improve germination rates for old seeds, facilitate faster growth of seedlings, and increase biomass gain in the tested plants, both with fertilizers and without them.
Methods: A three-stage setup was used to accomplish this research.
In the first stage, a hologram, resulting from the interference of laser light with the plant’s fluorescence emission, was captured by a charged-couple device (CCD). A signal from the CCD was evaluated by a spectrum analyzer, where it was transformed into a digital signal, suitable to be used further in an LED illumination system. The next stage was based on a single photon counting unit combined with a special light-proof chamber designed for registering low-light emissions. This system allowed for the registering of biophotonic flux from a plant sample, while it was illuminated by various spectrum LEDs. After illuminating each test plant sample with a modulated emission, a delayed fluorescence intensity was recorded. As soon as a favorable digital spectrum pattern was identified, it was processed in the third and final stage, where the test plants were grown in a controlled environment while being illuminated by LED light modulated with the identified favorable patterns and irrigated by water structured by the same LED emission pattern.
Results: This research indicates that electronic signals taken from the plants via their biophotonic flux can be used for modulating the emission intensity of LED lighting systems and subsequent water structuring, which can be used in agricultural applications, thereby affecting improved growth and chemical composition of plants.
Implications / Discussion: This research addresses a component of the common needs of small and medium family farms that face increasing risks regarding their production, as well as their financial risks. Because the proposed approach is easily scalable and adjustable to specific environmental needs, it can also serve well the needs of indoor farming and hydroponic farms.
Igor Nazarov earned a B.S. in Molecular Biophysics, an M.S. in Nuclear Physics, and a Ph.D. in Chemicals Physics at the Moscow Institute of Physics and Technology, USSR. He continued to work at the same institution as the Assistant Dean till 1990. Since 1983, Dr. Nazarov collaborated with Dr. Yury Kronn, the inventor of Vital Force Technology (VFT), and other researchers working in subtle energy. Recently, Dr. Nazarov worked at MIG-Tech Lab to develop a new Multidimensional Imaging Technology (MIG) based on non-linear light-matter interaction. Dr. Nazarov is an author of over thirty scientific publications and a book.
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Harnessing and Utilizing Plant's Biophotonic Emission
Igor Nazarov
Introduction: The aim of this research was to experimentally validate a low-intensity, light-sensitive set of several apparatuses for the analysis, recording, and storage of biophotonic flux emitted by various plants in an electronic format. The biophotonic flux profiles that were recorded as a spectral diagram were combined as an electronic file and applied to other plants through an LED illumination system modulated by electronic signals derived from the file that had been created. The tested plants were analyzed for changes in mass gain and chemical composition.
After the biophotonic flux was electronically recorded and transformed into a frequency-modulated current, it was applied to LED lighting devices, creating emission modulations. This modulated LED emission was used to illuminate water through special filters and caused the latter to acquire new qualities, a process which was named “water structuring.” Water structuring can lead to changes in the vibrational spectrum of water that result in the molecular structure of aquatic solutions attaining a higher order of organization and changing the way the structured water interacts with living organisms.
The results of these experiments demonstrate that biophotonic flux patterns transported to the test plants through water structuring, as compared to the control, improve germination rates for old seeds, facilitate faster growth of seedlings, and increase biomass gain in the tested plants, both with fertilizers and without them.
Methods: A three-stage setup was used to accomplish this research.
In the first stage, a hologram, resulting from the interference of laser light with the plant’s fluorescence emission, was captured by a charged-couple device (CCD). A signal from the CCD was evaluated by a spectrum analyzer, where it was transformed into a digital signal, suitable to be used further in an LED illumination system. The next stage was based on a single photon counting unit combined with a special light-proof chamber designed for registering low-light emissions. This system allowed for the registering of biophotonic flux from a plant sample, while it was illuminated by various spectrum LEDs. After illuminating each test plant sample with a modulated emission, a delayed fluorescence intensity was recorded. As soon as a favorable digital spectrum pattern was identified, it was processed in the third and final stage, where the test plants were grown in a controlled environment while being illuminated by LED light modulated with the identified favorable patterns and irrigated by water structured by the same LED emission pattern.
Results: This research indicates that electronic signals taken from the plants via their biophotonic flux can be used for modulating the emission intensity of LED lighting systems and subsequent water structuring, which can be used in agricultural applications, thereby affecting improved growth and chemical composition of plants.
Implications / Discussion: This research addresses a component of the common needs of small and medium family farms that face increasing risks regarding their production, as well as their financial risks. Because the proposed approach is easily scalable and adjustable to specific environmental needs, it can also serve well the needs of indoor farming and hydroponic farms.
Igor Nazarov earned a B.S. in Molecular Biophysics, an M.S. in Nuclear Physics, and a Ph.D. in Chemicals Physics at the Moscow Institute of Physics and Technology, USSR. He continued to work at the same institution as the Assistant Dean till 1990. Since 1983, Dr. Nazarov collaborated with Dr. Yury Kronn, the inventor of Vital Force Technology (VFT), and other researchers working in subtle energy. Recently, Dr. Nazarov worked at MIG-Tech Lab to develop a new Multidimensional Imaging Technology (MIG) based on non-linear light-matter interaction. Dr. Nazarov is an author of over thirty scientific publications and a book.
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Support the Society’s commitment to maintain an open professional forum for researchers at the edge of conventional science: https://linktr.ee/scientificexploration
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![Consciousness, Sentiment and Stock Market Returns: Can the GCP Data be Put to Practical Use?
Consciousness, Sentiment and Stock Market Returns: Can the GCP Data be Put to Practical Use?
Ulf Holmberg
The Standard & Poors 500 Volatility Index (VIX), a common measure of market sentiment, is found to be significantly correlated with the hardware-generated random numbers produced by the Global Consciousness Project (GCP). More specifically, the largest daily composite GCP data value (Max[Z]) as well as changes in it and its variance is found to significantly interact with changes in the VIX measure. The results suggest that the GCP data can help in explaining market sentiment and that daily market movements can be better understood by studying the GCP data. The results point towards that the GCP data can be put to practical use by traders, which is investigated in an out-of-sample simulation study. By fitting econometric models that either utilize or ignore the GCP data on daily S&P 500 returns, model-dependent investment rules can be established such that the validity and usefulness of the GCP data can be studied. To this end, an out-of-sample simulation study began on the 1st of August 2022 and is scheduled to end on the 1st of August 2023. The result from the study currently suggests that the GCP data indeed can be used to improve daily forecasts such that the GCP data can be used in practice by e.g., traders. Both the philosophical and practical implications of these results are self-evident.
Bio: Dr. Holmberg is an independent researcher. He holds a Ph.D. in Economics and has, in his research, shown that the GCP data covaries with several social science variables. He has also shown that the GCP data covaries with both global stock market returns and global internet search trends and is currently investigating how the GCP data can be put to practical use. He works and lives in Stockholm, Sweden.
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The SSE provides a forum for original research into cutting edge and unconventional areas. Views and opinions belong only to the speakers, and are not necessarily endorsed by the SSE. Consciousness, Sentiment and Stock Market Returns: Can the GCP Data be Put to Practical Use?](https://i.ytimg.com/vi/Kaz8RrIufMY/mqdefault.jpg)








![Daniel P. Sheehan | Its About Time
The phenomenon of time is one of the most familiar yet one of the most perplexing aspects of our existence. Questions surrounding it are legion and it now appears ripe for scientific revolution and redefinition. Perhaps its most vexing feature is that, whereas the central equations of physics are time-symmetric (that is, they admit both time-forward and time-reversed solutions), our everyday experience is time-asymmetric, unidirectionally toward the future [1-3].
The various forms of precognition (e.g., presentiment, premonition) stand as counter-examples to this temporal unidirectionality. Although there is no consensus scientific explanation for it, precognition likely does not involve new physics; rather it requires that currently accepted physics be interpreted in a more forthright manner.
In this talk, I will introduce the rudiments of times symmetry and asymmetry, then propose an explanation for precognition in terms of currently-accepted physics. New research directions will be suggested, including non-biologic systems that might demonstrate this phenomenon. Potential scientific, cultural and commercial ramifications will be discussed.
1) Sheehan, D.P. (Editor), Frontiers of Time: Retrocausation - Experiment and Theory, AIP Conference Volume 863, (AIP Press, Melville, NY, 2006).
2) Sheehan, D.P. (Editor), Quantum Retrocausation: Theory and Experiment, AIP Conference Volume 1408 (American Institute of Physics, Melville, NY, 2011).
3) Sheehan, D.P. (Editor), Quantum Retrocausation III, AIP Conference Volume 1841 (American Institute of Physics, Melville, NY, 2017).
Bio: Daniel Sheehan is a Professor of Physics at the University of San Diego. His interests include experimental plasma physics, the foundations of thermodynamics, planetary formation, nanotechnology, and the physics of time.
Recorded at the Society for Scientific Exploration Conference in Broomfield, Colorado 2019.
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The SSE provides a forum for original research into cutting edge and unconventional areas. Views and opinions belong only to the speakers, and are not necessarily endorsed by the SSE. Daniel P. Sheehan | Its About Time](https://i.ytimg.com/vi/Lun9-YUKgNI/mqdefault.jpg)
