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In full flush mode, very very dense buds this time round. Literally like rocks.
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@Buck5050
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This is a cross I am testing. I am using a "hempy bucket" style grow. It is a drain to waste system that uses 80% perlite and 20% vermiculite as the grow medium. I will use these solo cups for the first couple weeks and up pot from there. I like to keep my growing simple and fairly inexpensive, I will use General Hydroponics for the entire grow except for the cal-mag. My intentions are to use the 10 week standard feed schedule made for these nutrients unless I run into some major issues.
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Haven’t been keeping up on here but its gucci. Took some clones of the Apple Fritter and Litterbox Biscuit. Not sure if they’re all gonna make it
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Thanks to everyone who followed the diary, left a comment and shared the journey with us. And a special thanks to Piperoots for the great work behind this grow. The dedication and consistency throughout the whole cycle made it possible to show Tropicana Cookies from the first stages all the way to harvest. This is what we love: putting genetics into real hands, testing them in real conditions and documenting the results. Much respect to everyone following the project. More genetics, more tests and more diaries coming.
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@TAXFR33
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This week i’ve seen the most rapid growth. Was super shocked to see nearly all my plants as tall as me! Some leaves are starting to yellow a bit so next week i will top dress and carry on LST.
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Todo resultó bien, pero hubo una semilla que a pesar de que germinó de manera exitosa no logró enraizar correctamente. Quedando con 14 semillas de 15 en total seguimos ...
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Remember that, however you are played, or by whom, your soul is in your keeping alone. Even though those who presume to play you be kings or men of power, when you stand before God, you cannot say, 'But I was told by others to do thus,' or that virtue was not convenient at the time. This will not suffice. Remember that. Day:18 84°F and 65% RH (VPD) for the vegetative stage. Approximately 1.15kPa(assuming leaf temperature is about 2°F cooler than the air), which falls right into the ideal vegetative sweet spot (0.8kPa to 1.2kPa). At 1.15kPa, plants can draw water and nutrients efficiently without risking stress or wilting. It keeps the leaf pores (stomata) open, allowing for ideal carbon dioxide intake and maximizing vegetative growth. VPD is determined by the leaf's temperature, not just the ambient air. Because leaves usually run 1° to 3°F cooler than room air under bright grow lights, my actual VPD will be slightly lower, closer to the 1.0kPa mark. As she transitions from vegetative growth to flowering, one can gradually lower the humidity (to around 45–60%) and drop temperatures slightly to prevent disease from settling inside dense buds when they appear. Night:6 At 70°F and 60% relative humidity, Vapor Pressure Deficit (VPD) is 0.86 kPa. This is right on the cusp of whats optimal for the vegetative stage. During the nighttime, plants generally close their stomata and undergo cellular respiration rather than photosynthesis. Transpiration slows to a near stop, making VPD less critical at night than during the day. However, maintaining a nighttime VPD between 0.8 and 1.0 kPa is highly beneficial in that it ensures the air is dry enough to prevent powdery mildew or bud rot, but moist enough to keep the plant from undergoing unnecessary stress. This range keeps the environment comfortable for cellular processes and prevents large atmospheric swings. Keeping it all flowing. (Not pushing them yet, these are photoperiods) The optimal soil (root zone) temperature for cellular root respiration and nutrient uptake in cannabis is between 68F & 72F This narrow range balances biological energy production (cellular respiration) with the dissolved oxygen levels in the soil, maximizing plant growth and health. Warmer soils hold significantly less dissolved oxygen. When soil temperature exceeds 74F oxygen depletion occurs, inhibiting cellular respiration almost entirely, At 68-72F root cells generate optimal adenosine triphosphate (ATP) via respiration to power root-tip elongation and the active transport of water and nutrients. Too Hot (Above 78F) Root respiration increases, demanding more oxygen, while the water's oxygen-carrying capacity drops. This creates a prime environment for anaerobic pathogens and Pythium (root rot). Too Cold (Below 60F) Root metabolism and cellular respiration slow to a crawl. This severely impairs nutrient and water absorption, leading to yellowing, wilting, and phosphorus deficiencies. A lot depends on whether it's automatic or photoperiod; with photoperiod, there is not as much of a need to push "hard" as the real countdown only begins once the flower is initiated. Automatics, on the other hand, the chronological "clock" begins ticking the moment the seed germinates. It is of critical importance that the seedling growth gets off to the races, understanding that early growth is like compound interest, which will pay off come harvest. This reality is why getting autoflowers "off to the races" early on yields such exponential benefits. The "compound interest" is directly related to the surface area of the leaves. Larger, faster-growing seedlings process more light and build bigger root networks early on, which translates into an explosion of vertical and lateral growth during their short vegetative window. The margins for error are so thin with autoflowers; this early-stage momentum depends on several critical practices. Seedlings exposed to increased atmospheric CO2 levels early in life will develop at an increased rate. To effectively "extend" or optimize the capacity of Photosystem II (PSII) for increased photosynthetic efficiency. In standard oxygenic photosynthesis, Photosystem II (PSII) is naturally limited to the red-light spectrum, peaking at 680nm. Extending its light-harvesting capacity past 700nm into the far-red region requires bypassing the natural limits of standard chlorophyll a. Adding 730 nm (far-red) LEDs alongside standard red/blue lights has been shown to increase canopy photosynthesis by 20–30% in several crops by acting synergistically with shorter wavelengths. However, the limitation is that excessive, pure IR/Far-red light (without accompanying red light) can trigger the "shade avoidance response," causing plants to grow tall, weak, and spindly rather than robust. Utilizing infrared light (specifically the 700-750 nm far-red range) is a viable method to boost photosynthetic efficiency. It acts as a bridge to allow PSII to utilize a broader spectrum of light, breaking the traditional 700 nm barrier. UVR8-mediated signaling (often in conjunction with CRY proteins) triggers protective mechanisms that maintain the stability of the photosynthetic apparatus (including LHCII and reaction center proteins), thus ensuring that the efficiency of Photosystem II remains higher in UV-B-exposed plants compared to plants lacking this receptor. ΦPSII indictates the rate of electron transfer from water to plastoquinone, which drives the production of ATP and NADPH. There is a close link between ΦPSII and the true rate of CO2 fixation (Φ*co2). ETR stands for Electron Transport Rate. It measures the speed at which electrons are moved through the thylakoid membranes in a plant's chloroplasts during the light-dependent reactions of photosynthesis. Infrared light (particularly Near-Infrared or NIR) improves cellular energy by interacting directly with the electron transport chain (ETC) in mitochondria. This process boosts adenosine triphosphate production, which acts as a metabolic coefficient multiplier by accelerating enzyme activity dramatically. Extend then multiply. Far-Red photons interact with plant photoreceptors to accelerate the plant’s biological "clock" or trigger a shade-avoidance response. Autoflowers don't use the plant's biological clock, although the IR will initiate a shade avoidance and make them stretchy. You can just add equal measures of 660nm-680nm to negate the shade avoidance effect. Replacing nights' "darkness" with a combination of IR+ and 660nm. Because autoflowers don't require a dark period to flower, many growers just blast them with light. 18/6 24/0. However, this ignores the plant's metabolic rhythms, where daytime photosynthesis (light reactions) must be perfectly balanced with nighttime carbon fixation and assimilation (Calvin cycle) to avoid bottlenecking plant development. Cellular respiration is a 24/7 process, but it can only function while the plant has the free oxidative capacity to do so. A 100% photosynthetically active leaf cannot perform cellular respiration. The viral trend of defoliation of every leaf that isn't "getting enough light" is of great detriment overall, putting 100% of the cellular respiratory "workload" and responsibility on the 0/4/6 hours of darkness in sub-optimal conditions for enzymatic activity. Photosynthesis captures nearly 100% of the initial energy as carbon, while cellular respiration is the process that unlocks 90% of that captured energy into usable ATP so the plant can use it. Respiration is considered roughly 30% to 40% efficient. It captures enough of the potential energy in glucose to synthesize around 30 to 38 ATP molecules per glucose molecule. The remaining 60% to 70% of the energy in the sugar is not captured in ATP; instead, it naturally escapes into the environment as heat, which helps regulate plant temperature. In plants, the primary enzymes of the Electron Transport Chain (ETC) and the ATP synthase complexes are typically adapted to function optimally in warmer temperatures (roughly 25°C to 35°C depending on the specific plant strain). As temperatures rise within this physiological range, molecular collisions increase, speeding up respiration and ATP production. The cannabis plant has a branched respiratory pathway. During heat or cold stress, plants activate Alternative Oxidase (AOX). AOX burns sugars to dissipate energy as heat rather than coupling it to ATP production. This pathway actually functions optimally at elevated temperatures to help protect the cell from the damaging build-up of Reactive Oxygen Species (ROS) during heat stress. Enzyme activity generally scales with heat; there is a strict biological limit. If canopy temperatures in a grow room exceed 40°C, the enzymes and their supporting lipid membranes lose stability. Not saying you need to go crazy, just optimize nights the same as we optimize days. Phosphorus is the driving force behind early seedling development. It acts as the "energy hub" of the plant, directly driving cell division, robust root growth, and the creation of DNA. Without an adequate, easily accessible supply early on, the plant's overall growth potential and final yield can suffer permanently. E=MC2 looks like a simple multiplication problem; it describes a fundamental physical truth: mass and energy are the same thing. The equation doesn't just calculate a value; it reveals that mass is effectively "congealed" energy. Energy is just numbers. Energy isn't a physical "substance" you can hold or touch. It is essentially an abstract, calculated number that we assign to a system to predict how it will change, interact, or move. A numerical label we attach to matter to track how it behaves. Because the universe runs on laws of symmetry (specifically, that the laws of physics don't change over time), a single global number must be conserved. We call that number "energy". We don't grow; we facilitate energy conversion. How well a seedling grows is essentially down to how much knowledge one can acquire to increase the level of conversion to occur. Applying knowledge effectively requires intuition, which comes from hands-on experience. A seasoned stoner learns to read subtle signs—like a slight change in leaf turgor (stiffness), subtle color shifts, or the specific texture of the soil—before a textbook diagnosis can be made. Ultimately, growing is the application of botanical science blended with active observation. Knowledge dictates your potential, but adaptability and attentiveness to the plant's immediate environment determine your results. 1.618 nature mathematically optimizes quantum energy transfer and light absorption efficiency within the photosynthetic machinery, as it naturally dictates energy scaling hierarchies and resonance dynamics. External vibration or electromagnetic wave that perfectly matches a plant's natural frequency directly influences plant growth. Low-frequency sound waves and targeted electromagnetic fields stimulate cellular processes and boost photosynthetic efficiency Does it produce better yields? How long is a piece of string? As long as you cut it. But isssss the juice worth the squeeze? The quantum framework of the IVM seems to think so. Good enough for the quantum firmware, good enough for the DNA software. Genetics are not dictated; they are expressed; the rate of that expression is dictated by the environment in which growth occurs. Quantum Coherence in Photosynthesis occurs When a photon of sunlight strikes a leaf, the energy it carries must travel to a reaction center to be converted into chemical energy. This process operates at nearly 100% efficiency. If the energy moved in a traditional "bunching" or random hopping manner, a large portion of it would be lost as heat. Instead, plants utilize quantum superposition. The energy particle (exciton) doesn't just take one path; it exists in a wave state and explores multiple pathways simultaneously. It essentially "chooses" the most efficient route to the reaction center simultaneously. Research shows that molecular vibrations and the specific network arrangements of chlorophyll molecules (like the naturally evolved Chlorophyll A & B ratios) actively protect against energy overflow, optimizing light capture across different light intensities. Enzymes are the biological catalysts that speed up chemical reactions within a plant's cells, allowing them to grow, metabolize, and repair. Rather than relying solely on the classical kinetic energy of molecules colliding, plants use quantum tunneling. Subatomic particles like electrons and protons (hydrogen ions) can literally "teleport" through energy barriers that they normally wouldn’t have the energy to climb over. This makes vital metabolic reactions happen far faster than classical physics could ever explain. Chloryphyll b has peak absorption at 460nm (Blue) and at 647nm(Red). If we take the blue peak wavelength 460nm and a UV-B, UVR8 peak absorption wavelength 285nm, Tryptophan-285 (W285) Sensing protein. 460/285=1.618 Φ If we take chlorypyhll b's Red absorption peak 647nm and a UV-A of 400nm, we get 647/400=1.618 Φ. "Structure of light". The cryptochrome photoreceptor (CRY) is a UV-A/blue light receptor that shares this dual sensitivity with several other biological structures and functions, including significant sequence similarity and a common evolutionary ancestor with DNA photolyase enzymes. These are light-activated enzymes that use blue/UV-A light to repair DNA damage caused by UV-B radiation in plants. Synergistic. But Shhh, it's a secret. Effective quantum efficiency of photosystem II, often denoted as ΦPSII, represents the proportion of light absorbed by Photosystem II (ΦPSII) that is actually used in photosynthetic electron transport. It is a key indicator of how efficiently a plant is using light for photosynthesis, as opposed to losing it as heat or fluorescence. ΦPSII (effective quantum yield of photosystem II) functions primarily as a "multiplier" (a coefficient of efficiency) rather than an additive factor when estimating the overall photosynthetic electron transport rate (ETR). Multipliers are considered far more beneficial than additions because they generate exponential growth, leverage existing resources to their full potential, and create sustainable, self-multiplying capacity, rather than just incremental, linear increases. This fascinating observation is rooted in the intersection of subatomic geometry, fractal scaling, and quantum dynamics. In specific molecular arrangements—such as in conjugated polymer networks or biomolecular architectures—the Golden Ratio (PHI) naturally dictates energy scaling hierarchies and resonance dynamics. Mathematically tied to the fine-structure constant, which defines the strength of the electromagnetic interaction. The Golden Ratio can be mapped geometrically as the Golden Angle (137.5 degrees) in atomic structures, linking the charge of the electron to fundamental quantum constants like Planck's constant. Electromagnetic. The Golden Angle (137.5): This angle is derived from the Golden Ratio (1.618). It is the smaller of two angles created when a circle is divided such that the ratio of the arcs equals the Golden Ratio.
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@BB_UK
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Been a working week! Defoliated twice! First I did lower fan leaves, waited a few days and snipped the Rest to allow light to reach all news growth! Dynomyco is a banger it’s got these girls so sturdy! Just look at the stems and how much growth I have already and this is just day 28 in veg! A lot more to come! I can’t wait! Still continuing with foliar sprays a few times a day!
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Woooo, peep that fade!!! Day 75 from seed. Things are really winding down now. Nutrients are done, some leaves are curling and drying. Tricomes are showing a small amount of amber so I'm watching daily for the right percentage I want. Next post will likely be after harvest, dry, and trim for final weights.
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All smiles probably the best plant by fast buds I've ran , smells dank going be a nice haul easily over 4 zips best nutrients and lights:) should be done within a month :) drinking water everyday at this point:)
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El dia sabado 17/8 se aplico 15gr de Bio4 (4-4-4), 15gr de Phenex(6-8-!5) y humus de lombriz por cada maceta y se regó con 2 litros de agua con ph 6.3 por maceta. Las plantas pegaron un estiron asi que se coloco el segundo led de 180W. 22/8 se realizo una defoliacion no muy agresiva retirando solamente las hoja mas grandes.
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@Ferinky
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En esta actualización se incluyen 2 semanas ya que por trabajo me fue imposible añadir la semana anterior. El día 15 de Agosto recibió la segunda pulverización de Bacillus Thuringiensis para prevenir el ataque de las orugas. Sigo alternando riego de agua un día con riego de Ascophillum Nodosum al día siguiente. He dejado de regar con Cannazym.
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@Ageddd
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Cold cold week, with intermitent rain, and the last feedings, The AK is yellowing and rushing to flower, but, there are still white hairs, and the fattening is not complete, so im flushing until the end (1-2 weeks) Im looking for a narcotic effect so im letting her more time, because no bugs around, the THC layer has increased this week and you can smell the therpenes a little more, really musky-fruty with hints of mango It has reained on the plant last 3 weeks intermitently, but as the buds are not so compact as a Skunk, and the thc layer covering the flowers i find it can survive more, without problems Never expected to have an Indica the 10th of November but, im happy with that fact, she started to grow 7th of August soo a late Afghan Kush ^^ The colours are incredible, thanks Nature and Sedsman for this gift !! One of the most beautiful plants i have ever seen in person.. Good VIbez GD !!!! Thanks for checking, and bros, remember, roll one for the Cold days :D
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Clementine Slush #5: She is green, stout, and producing a beautiful shape! I think she is a perfect size for the 3.9 gallon autopot, and she is already drinking from the autopot base, as I gave her 800 ml over 5 hours and she brought it all into her roots! Absolutely perfect and ahead of the tent. I love Mykos at transplant. I have been training her out to get that bush shape, and she is looking great and taking to that shape well. Tent-Wide Updates: With the big transplant past us, week 6 was focused on LST across the tent and preparing for turning the Autopot system on by getting the root zones prepared and mass growing as much as possible. My strategy for training is going to be getting individual ScrOGs going within each pot's "Zone" within the tent, using gardening wire first, but eventually using tall bamboo sticks and more wire to train each plant within a certain zone while also keeping the plant mobile. While I am not quite there yet, I have focused on widening out each plant's canopy as they being to take to their new home, and over the nex week, I will test each plant by adding a bit of water to each autopot base to see if they have their lower roots ready to absorb some solution. If so, we will turn on the autopots and bear witness to the famed boom! On day 40, I did 1 liter of water in each pot with the following solution recipe: 1 Gallon RO Water .5 ml Ventana Plant Science Structure 2 ml Ventana Plant Science Grow 7 ml Ventana Plant Science Support ec 1.0 ph 5.7 They took to the water well! Additionally, I turned on our Airdomes across the tent. I started low for about 3 hours each day just to avoid too much stress, and I increased them 1 hour each day until I upped it to mostly on the entire time of daylight. They definitely enjoyed the extra oxygen! Heading into week 7, I will activate the autopots and Veg into week 8. I expect a week 9 flip to flower and hopefully a x 4 boom in growth!
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Explosive growth compared to last week. I topped again, which might be the last time before I allow for some more growth before flipping. Super Impressed, this would be much bigger if I did not delay transplanting for a week and a half, because I had my grow space full! I just started 2 others, unfortunately bad timing as this one's almost to flower, so either I will stretch the veg out for much longer so all plants can flower at same time, or work out other arrangements. So far I'm beyond impressed with Homegrown Genetics and cannot wait to see these beauties flower 😁
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This grow was pretty simple ! They went a total of 103 days from seed! Very trichomy dense buds with the smell of Berries vanilla and skunk ! This is a must try for you all Fastbuds has the greats!!!
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This plant has really started taking off this week. Lots of pistil production going on. Feeding with med man brand nutes. Kind bud base at 600 ppm, now switching from kick to bloom. Still at half a gram per l of water