Fig. 5 PEDOT-infused leaves.

Slides:



Advertisements
Similar presentations
Slide 1 of 32 Copyright Pearson Prentice Hall 23–4 Leaves.
Advertisements

Stems and Leaves.
Looking at Leaves. Leaf Parts of leave you can see : 1. blade and petiole.
Transport in Plants In humans and many other animals, substances are transported around the body in the blood through blood vessels. Plants have two separate.
The Leaf The Leaf is the Main photosynthetic organ in a plant.
Leaf Structure Mr. Hefti – Pulaski Biology. Identification: 1.Cuticle 2.Upper epidermis 3.Mesophyll Transport tissues Xylem Phloem Palisade layer Spongy.
Leaf Structure.
AP Biology Investigation 5: Photosynthesis
To Do: Thursday 1. Check your concept map with one of the keys around the room 2. Go to one of the microscopes and fill in your half sheet warm-up 3. Plant.
The Leaf The Leaf is the Main photosynthetic organ in a plant. Controls gas exchange in plants. Controls the amount of water loss in plants when it is.
What’s the relationship between structure and function in a leaf?
Internal Structure of the Leaf
Name the function of a leaf
Looking at Leaves.
Inside of a Leaf.
AP Biology Investigation 5: Photosynthesis
Modeling Whole Plant Water Transport: Introduction to Plant Hydraulics
AP Biology Investigation 5: Photosynthesis
MAKE SURE YOU WRITE IN SENTENCES
Copyright Pearson Prentice Hall
Copyright Pearson Prentice Hall
Leaves.
Continue of Plant kingdom
Transpiration.
Bell Ringer: 3/16 Turn in the Celery Lab and the Critical Reading homework. Grab your beans, and make your Day 4 observations.
Plant cross-section.
Fig. 2 APT reconstructed volumes of human dental enamel HAP nanowires showing intergranular Mg-rich ACP. APT reconstructed volumes of human dental enamel.
Fig. 2 Electronically conducting xylem wires.
Fig. 2 The arrangements of metal core and ligands.
Fig. 2 CFD results. CFD results. Results of CFD simulations in horizontal (left column) and vertical (right column) cross-sections. All models oriented.
Fig. 1 Demographic shifts in knowledge producers.
Fig. 4 Electrical properties and patterning of the stretchable PEDOT/STEC (STEC content is 45.5 wt % for all). Electrical properties and patterning of.
Copyright Pearson Prentice Hall
Fig. 4 Complete separation of water and solute after stable and efficient solar evaporation. Complete separation of water and solute after stable and efficient.
Design concept of the water lily–inspired hierarchical structure
Fig. 3 Faculty placement distributions.
Fig. 2 Solid-state NMR spectra of ceria in contact with water.
Tissues, Chlorophyll, Canopy, Sun vs. Shade Leaves
Fig. 2 Fluence-dependent emission characteristics of CH3NH3PbI3 recorded at 15 and 300 K. Fluence-dependent emission characteristics of CH3NH3PbI3 recorded.
Fig. 4 Comparison of East African paleotemperature data with CMIP5/PMIP3 model output. Comparison of East African paleotemperature data with CMIP5/PMIP3.
Fig. 5 Thermoelectric performance of pristine Bi2Se3 nanoplate and the heterostructure. Thermoelectric performance of pristine Bi2Se3 nanoplate and the.
Fig. 4 Experimental outputs.
Fig. 5 Schematic phase diagrams of Ising spin systems and Mott transition systems. Schematic phase diagrams of Ising spin systems and Mott transition systems.
Characteristics of ultrathin single-crystalline semiconductor films
Fig. 4 Identification of miRNA packaged within MBVs.
Fig. 1 Cross-sectional images of He-implanted V/Cu/V samples.
Fig. 1 Structure and absorption spectra of the P
Fig. 2 Large-area and high-density assembly of AuNPs.
Fig. 3 Spatial distribution of CHL and NO3 anomaly localized within the perimeter of ACEs during winter on the basis of the third principal component of.
Fig. 5 Changes in PSD-95 synaptic puncta in the mPFC 6 weeks after exposure to 5 or 30 cGy of 16O or 48Ti charged particles. Changes in PSD-95 synaptic.
Fig. 7 Semiquantitative model of the knitted textile actuators.
Fig. 3 Double-resonance solid-state NMR data of ceria nanoparticles.
Fig. 2 Solution properties of S-PEDOT.
Fig. 7 Global change in the collective mass for wild mammals, humans, cattle, and all livestock for the years 1900–2050. Global change in the collective.
Fig. 3 Plastic ingestion and DMS responsiveness among procellariiform seabirds. Plastic ingestion and DMS responsiveness among procellariiform seabirds.
Fig. 1 Fractional coverage of the mapping method used in this study.
Fig. 4 CO2 emission changes triggered by the JJJ clean air policy.
Fig. 3 Scheme of the system connected to the microfluidic chamber.
Fig. 7 Correlation between the hierarchical structure and properties of S-PEDOT. Correlation between the hierarchical structure and properties of S-PEDOT.
Fig. 2 Number of years that would have been required for the observed vertebrate species extinctions in the last 114 years to occur under a background.
Fig. 3 Efficiency of the GDML predictor versus a model that has been trained on energies. Efficiency of the GDML predictor versus a model that has been.
Fig. 5 Frequency of appearances of immigrant vertebrate taxa or their oldest known descendants in opposing continents as observed in well-dated fossiliferous.
Fig. 5 Distributions of cell nuclear area values and internuclear distances in the breast tumor specimens (Figs. 3 and 4), where bin interval = 8 and n.
Fig. 2 Structural information.
Fig. 2 Textile actuators manufacturing.
Fig. 1 Prestige hierarchies in faculty hiring networks.
Fig. 4 Relationship of plastic ingestion and nesting behavior.
Fig. 2 The working principle and electrical output modulating of BD-TENG by changing the materials of friction layers. The working principle and electrical.
Fig. 4 3D graphene-RACNT fiber as the counter electrode for wire-shaped DSSCs. (A) Schematic representation of wire-shaped DSSC using 3D graphene-CNT fiber.
Fig. 2 Printed three-axis acceleration sensor.
Presentation transcript:

Fig. 5 PEDOT-infused leaves. PEDOT-infused leaves. (A) Vacuum infiltration. Leaf placed in PEDOT:PSS–NFC solution in a syringe with air removed. The syringe is pulled up, creating negative pressure and causing the gas inside the spongy mesophyll to be expelled. (B) When the syringe returns to standard pressure, PEDOT:PSS–NFC is infused through the stomata, filling the spongy mesophyll between the veins. (C and D) Photograph of the bottom (C) and cross section (D) of a pristine rose leaf before infiltration. (E and F) Photograph of the bottom (E) and cross section (F) of leaf after PEDOT:PSS–NFC infusion. Eleni Stavrinidou et al. Sci Adv 2015;1:e1501136 Copyright © 2015, The Authors