Objective: To compare the use of glossopharyngeal breathing (GPB) and air stacking to increase lung volumes and cough peak flows (CPF), and GPB to increase ventilator-free breathing ability (VFBA), for patients with Duchenne muscular dystrophy.
Design: A case series of all referred patients with declining vital capacity (VC). Seventy-eight patients underwent training in and monitoring of the efficacy of air stacking (retaining consecutively delivered volumes of air delivered via manual resuscitator and held by glottic closure) to maximum insufflation capacity (MIC). GPB also was demonstrated to all 78 patients, and 32 were formally trained and prescribed GPB as their VCs decreased below 400 ml. To be successful, the MIC or GPB maximum single-breath capacity (GPmaxSBC) had to exceed VC. Improvements in VFBA were determined by requiring fewer ventilator-assisted breaths per minute. CPFs were measured by peak flow meter.
Results: Seventy-four (94.9%) of the patients could air stack (MIC > VC), and, thus far, 21 (27%) are able to GPB. Fifteen could GPB sufficiently to delay onset of daytime ventilator use and, later, to require 1.9 fewer ventilator assisted breaths per minute. For the 47 patients with multiple data points, as VC deteriorated from 1080 +/- 870 to 1001 +/- 785 ml, MIC increased from 1592 +/- 887 to 1838 +/- 774 ml. For 21 patients, GPmaxSBC significantly exceeded VC (824 +/- 584 vs. 244 +/- 151 ml, respectively, P < 0.001). The ability to increase lung volume by air stacking (MIC) was better retained than was the ability to increase lung volume by GPB (GPmaxSBC). Air stacking also permitted assisted CPF to exceed unassisted CPF: 289 +/- 91 and 164 +/- 76 liters/m, respectively (P < 0.001).
Conclusions: GPB and air stacking can increase lung volumes and, thereby, cough flows. GPB also can be used in many cases to delay and decrease daytime ventilator use.
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http://dx.doi.org/10.1097/PHM.0b013e318038d1ce | DOI Listing |
Proc Natl Acad Sci U S A
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Alan G. MacDiarmid NanoTech Institute, University of Texas at Dallas, Richardson, TX 75080.
The highest sheet symmetry form of graphyne, with one triple bond between each neighboring hexagon in graphene, irreversibly transforms exothermically at ambient pressure and low temperatures into a nongraphitic, planar-sheet, zero-bandgap phase consisting of intrasheet-bonded sp carbons. The synthesis of this sp carbon phase is demonstrated, and other carbon phases are described for possible future synthesis from graphyne without breaking graphyne bonds. While measurements and theory indicate that the reacting graphyne becomes nonplanar because of sheet wrinkling produced by dimensional mismatch between reacted and nonreacted sheet regions, sheet planarity is regained when the reaction is complete.
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Division of Micro and Nanosystems (MST), School of Electrical Engineering and Computer Science (EECS), KTH Royal Institute of Technology, Stockholm SE-10044, Sweden.
Controlled breakdown has emerged as an effective method for fabricating solid-state nanopores in thin suspended dielectric membranes for various biomolecular sensing applications. On an unpatterned membrane, the site of nanopore formation by controlled breakdown is random. Nanopore formation on a specific site on the membrane has previously been realized using local thinning of the membrane by lithographic processes or laser-assisted photothermal etching under immersion in an aqueous salt solution.
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Anhui Soltrend New Energy Technology Co., Ltd, Lujiang County, Hefei, 230000, China.
Dopant-free passivating contact crystalline silicon solar cells hold the potential of higher efficiency and cost down. In the hole-transport terminal, one still faces the challenge of trade-off between efficiency and stability. In this work, a H-AlO/NiO/Ni stacked hole-transport layer is proposed, where the H-AlO standing for H-rich AlO film can effectively reduce the interfacial defects and the high work function Ni metal results in a low contact resistance of 47.
View Article and Find Full Text PDFHeliyon
January 2025
Department of Energy System Engineering, Faculty of Mechanical Engineering, K.N. Toosi University of Technology, No. 15, Pardis St., Molasadra Ave., Vanak Sq., Tehran, Iran.
The rising global demand for air conditioning systems, driven by increasing temperatures and urbanization, has led to higher energy consumption and greenhouse gas emissions. HVAC systems, particularly AC, account for nearly half of building energy use, highlighting the need for efficient cooling solutions. Passive cooling, especially radiative cooling, offers potential to reduce cooling loads and improve energy efficiency.
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